WO2021035162A1 - Ion-conducting structures, devices including ion-conducting structures, and methods for use and fabrication thereof - Google Patents
Ion-conducting structures, devices including ion-conducting structures, and methods for use and fabrication thereof Download PDFInfo
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- WO2021035162A1 WO2021035162A1 PCT/US2020/047460 US2020047460W WO2021035162A1 WO 2021035162 A1 WO2021035162 A1 WO 2021035162A1 US 2020047460 W US2020047460 W US 2020047460W WO 2021035162 A1 WO2021035162 A1 WO 2021035162A1
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Definitions
- Embodiments of the disclosed subject matter provide ion-conducting structures formed by one or more elementary nanofibrils whose polymer molecular chains have been chemically modified, as well as devices including such ion-conducting structures, and methods for fabrication and use thereof.
- the elementary nanofibril(s) can be a naturally-occurring polysaccharide, such as cellulose, chitin, or chitosan.
- the chemical modification of the elementary nanofibril(s) involves breaking hydrogen bonds between the polymer molecular chains to allow metal ions to form respective coordination bonds between exposed functional groups of adjacent polymer molecular chains.
- an ion-conducting structure comprises a metal-fibril complex formed by one or more elementary nanofibrils.
- Each elementary nanofibril is composed of a plurality of cellulose molecular chains with functional groups.
- Each elementary nanofibril can have a plurality of metal ions.
- Each metal ion can act as a coordination center between the functional groups of adjacent cellulose molecular chains so as to form a respective ion transport channel between the cellulose molecular chains.
- the metal-fibril complex can also comprise a plurality of second ions. Each second ion can be disposed within one of the ion transport channels so as to be intercalated between the corresponding cellulose molecular chains.
- the metal-fibril complex can be a solid-state structure.
- a battery comprises a first electrode, a second electrode, and a separator membrane.
- the separator membrane can be between the first and second electrodes.
- the separator membrane can comprise a solid-state metal-fibril complex.
- One of the first and second electrodes can operate as a cathode, and the other of the first and second electrodes can operate as an anode.
- the solid-state metal-fibril complex can be formed by a plurality of first nanofibrils.
- Each first nanofibril can be composed of a plurality of cellulose molecular chains with first functional groups.
- Each first nanofibril can have a plurality of first metal ions.
- Each first metal ion can act as a first coordination center between the first functional groups of adjacent cellulose molecular chains so as to form a respective first ion transport channel through the separator membrane.
- the solid-state metal-fibril complex can comprise a plurality of second ions. Each second ion can be disposed within one of the first ion transport channels so as to be intercalated between the corresponding cellulose molecular chains.
- a battery comprises a first electrode, a second electrode, and a separator between the first and second electrodes.
- One of the first and second electrodes can operate as a cathode, and the other of the first and second electrodes can operate as an anode.
- the separator can comprise a solid-state electrolyte.
- the first electrode, the second electrode, or both the first and second electrodes comprises a solid-state metal-fibril complex.
- the solid-state metal-fibril complex can be formed by a plurality of nanofibrils. Each nanofibril can be composed of a plurality of cellulose molecular chains with functional groups. Each nanofibril can have a plurality of metal ions.
- Each metal ion can act as a coordination center between the functional groups of adjacent cellulose molecular chains so as to form a respective ion transport channel between the cellulose molecular chains.
- the solid-state metal-fibril complex can comprise a plurality of second ions. Each second ion can be disposed one of the ion transport channels so as to be intercalated between the corresponding cellulose molecular chains.
- a method can comprise (a) forming a metal-fibril complex by immersing a plurality of elementary nanofibrils within an alkaline solution having a concentration of at least 5% (w/v) and a plurality of metal ions dissolved therein.
- Each elementary nanofibril can be composed of a plurality of cellulose molecular chains with functional groups.
- the immersing of (a) can be such that hydrogen bonds between adjacent functional groups of the cellulose molecular chains are broken so as to expose the functional groups and such that the dissolved metal ions from the alkaline solution form coordination bonds with the exposed functional groups.
- the method can further comprise (b), after (a), intercalating second ions between adjacent cellulose molecular chains of the metal-fibril complex by immersing the metal- fibril complex in a first solution having a plurality of the second ions dissolved therein.
- the method can also comprise (c), after (a), replacing free water in the metal-fibril complex by immersing the metal-fibril complex in an organic solvent.
- the method can further comprise (d), after (c), drying the metal-fibril complex such that a total content of water within the metal-fibril complex is less than or equal to 10 wt%, thereby forming the metal-fibril complex with intercalated second ions as a solid-state ion conducting structure.
- the first solution can be the organic solvent, and the intercalating of (b) and the replacing free water of (c) can be performed simultaneously. In other embodiments, the first solution can be separate from the organic solvent, and the intercalating of (b) can be performed before or after the replacing free water of (c).
- an ion-conducting structure comprises a metal-fibril complex.
- the metal-fibril complex can be formed by one or more elementary nanofibrils.
- Each elementary nanofibril can be composed of a plurality of polymer molecular chains with functional groups.
- Each elementary nanofibril can have a plurality of metal ions.
- Each metal ion can act as a coordination center between the functional groups of adjacent molecular chains so as to form a respective ion transport channel between the molecular chains.
- a battery comprises a first and second electrodes, and a solid electrolyte membrane between the first and second electrodes.
- One of the first and second electrodes can operate as a cathode, and the other of the first and second electrodes can operate as an anode.
- the first electrode, the second electrode, the solid electrolyte membrane, or any combination thereof can comprise an ion-conducting structure, which comprises a metal-fibril complex.
- the metal-fibril complex can be formed by one or more elementary nanofibrils.
- Each elementary nanofibril can be composed of a plurality of polymer molecular chains with functional groups.
- Each elementary nanofibril can have a plurality of metal ions.
- Each metal ion can act as a coordination center between the functional groups of adjacent molecular chains so as to form a respective ion transport channel between the molecular chains.
- a fuel cell comprises first and second electrodes, and a proton exchange membrane between the first and second electrodes.
- One of the first and second electrodes can operate as a cathode, and the other of the first and second electrodes can operate as an anode.
- the first electrode, the second electrode, the proton exchange membrane, or any combination thereof can comprise an ion-conducting structure, which comprises a metal-fibril complex.
- the metal-fibril complex can be formed by one or more elementary nanofibrils.
- Each elementary nanofibril can be composed of a plurality of polymer molecular chains with functional groups.
- Each elementary nanofibril can have a plurality of metal ions.
- Each metal ion can act as a coordination center between the functional groups of adjacent molecular chains so as to form a respective ion transport channel between the molecular chains.
- a method can comprise forming a metal-fibril complex by immersing a plurality of elementary nanofibrils within an alkaline solution and a plurality of metal ions dissolved therein.
- Each elementary nanofibril can be composed of a plurality of polymer molecular chains with functional groups.
- the immersing can be such that hydrogen bonds between adjacent functional groups of the polymer molecular chains are broken so as to expose the functional groups and such that the dissolved metal ions from the alkaline solution form coordination bonds with the exposed functional groups.
- a method can comprise conducting ions using one or more elementary nanofibrils.
- Each elementary nanofibril can be composed of a plurality of polymer molecular chains with functional groups that have been chemically-modified.
- the chemical-modification can include forming a coordination bond between a metal ion and functional groups of adjacent polymer molecular chains of the nanofibril.
- the chemical-modification can include converting hydroxyl groups of the polymer molecular chains to carboxyl groups, for example, using a (2,2,6,6-tetramethylpiperidin-l-yl)oxyl (TEMPO) treatment.
- the chemical-modification can include etherification of the functional groups, for example, using a 3-chloro-2-hydroxypropyl trimethyl ammonium chloride (CHPTAC) treatment.
- CHPTAC 3-chloro-2-hydroxypropyl trimethyl ammonium chloride
- FIG. 1 is a simplified schematic diagram illustrating the hierarchical aligned structure of cellulose fibers in natural wood.
- FIG. 2 A is a simplified schematic diagram illustrating adjacent polymer molecular chains in an exemplary elementary nanofibril in an original unmodified state, according to one or more embodiments of the disclosed subject matter.
- FIG. 2B is a simplified schematic diagram illustrating the nanofibril of FIG. 2A after immersion in an alkaline solution, thereby opening the space between the polymer molecular chains, according to one or more embodiments of the disclosed subject matter.
- FIG. 2C is a simplified schematic diagram illustrating the nanofibril of FIG. 2B after bonding of dissolved metal ions from the alkaline solution to the functional groups of adjacent molecular chains, thereby forming a metal-fibril complex, according to one or more embodiments of the disclosed subject matter.
- FIG. 2D is a simplified schematic diagram illustrating the metal-fibril complex of FIG. 2C after intercalation of second ions between the functional groups of adjacent molecular chains, according to one or more embodiments of the disclosed subject matter.
- FIG. 2E is a simplified schematic diagram illustrating the metal-fibril complex of FIG. 2D after solvent exchange, according to one or more embodiments of the disclosed subject matter.
- FIG. 2F is a simplified schematic diagram illustrating the metal-fibril complex of FIG. 2E after drying, thereby forming a solid-state structure, according to one or more embodiments of the disclosed subject matter.
- FIGS. 3A-3B are simplified process flow diagrams for exemplary methods for fabricating a solid-state ion-conducting structure, according to one or more embodiments of the disclosed subject matter.
- FIGS. 5A-5E are simplified schematic diagrams of exemplary battery systems employing solid-state ion-conducting metal-fibril complexes for one or more components, according to one or more embodiments of the disclosed subject matter.
- FIG. 6A is a simplified schematic diagram of a fuel cell system employing an ion- conducting metal-fibril complex, according to one or more embodiments of the disclosed subject matter.
- FIG. 7 is a simplified schematic diagram illustrating an aqueous ion-conducting structure formed by a metal-fibril complex with intercalated second ions, according to one or more embodiments of the disclosed subject matter.
- FIG. 9 is a simplified schematic diagram of an exemplary battery system employing an aqueous ion-conducting metal-fibril complex for one or more components, according to one or more embodiments of the disclosed subject matter.
- FIGS. 10A-10B are simplified schematic views of cellulose nanofibrils within a wood structure before and after delignification, respectively, in forming an exemplary ion-conducting structure, according to one or more embodiments of the disclosed subject matter.
- FIG. IOC is a simplified schematic diagram illustrating adjacent cellulose molecular channels in an exemplary cellulose nanofibril after chemical modification to act as an ion transport channel, according to one or more embodiments of the disclosed subject matter.
- FIG. 11 is a simplified process flow diagram for a method for fabricating an ion-conducting structure from wood, according to one or more embodiments of the disclosed subject matter.
- FIG. 12 is a simplified schematic diagram of an exemplary thermoelectric system employing a wood-based ion-conducting structure, according to one or more embodiments of the disclosed subject matter.
- FIG. 13 is a simplified schematic diagram of an exemplary transistor employing a wood- based ion-conducting structure, according to one or more embodiments of the disclosed subject matter.
- FIG. 14 is a simplified schematic diagram of an exemplary osmotic power generation system employing a wood-based ion selective structure, according to one or more embodiments of the disclosed subject matter.
- FIG. 15A is a simplified perspective view of a natural wood microstructure used in forming an exemplary ion-conducting structure, according to one or more embodiments of the disclosed subject matter.
- FIG. 15B shows a simplified perspective view (left) of an exemplary wood microstructure after chemical treatment and densification, and a simplified schematic diagram (right) illustrating adjacent cellulose molecular chains of the exemplary wood microstructure, according to one or more embodiments of the disclosed subject matter.
- FIG. 16 is a simplified process flow diagram for another exemplary method for fabricating an ion-conducting structure from wood, according to one or more embodiments of the disclosed subject matter.
- FIG. 17 is a graph of electrochemical impedance spectra (EIS) for a fabricated example of a solid-state metal-fibril complex (e.g., Cu-paper with intercalated Li ions) at different temperatures.
- EIS electrochemical impedance spectra
- FIGS. 18A-18B are graphs of EIS at different conductor lengths and resistance versus conductor length, respectively, for a fabricated example of a solid-state metal-fibril complex (e.g., Cu-wood with intercalated Li ions).
- a solid-state metal-fibril complex e.g., Cu-wood with intercalated Li ions.
- FIG. 18C is a graph comparing thermal gravimetric analysis (TGA) curves for delignified wood without any metal (e.g., white wood example), an example of Cu-wood treated with dimethylformamide (DMF) replacement, and an example of Cu-wood treated with electrolyte.
- TGA thermal gravimetric analysis
- FIG. 18D is a graph comparing tensile stress-strain curves for the white wood example treated with DMF and electroyte, and for the example of Cu-wood treated with electrolyte.
- FIG. 18E is a graph of EIS for another fabricated example of a solid-state metal-fibril complex (e.g., Cu-wood with intercalated Na ions).
- a solid-state metal-fibril complex e.g., Cu-wood with intercalated Na ions.
- FIG. 19 is a graph comparing stress-stain curves for crystalline cellulose (e.g., cellulose II) and a fabricated example of a metal-fibril complex (e.g., Cu-cellulose II).
- crystalline cellulose e.g., cellulose II
- metal-fibril complex e.g., Cu-cellulose II
- FIG. 20A is a graph of conductivities versus NaOH solution concentration for bulk solution and a fabricated example of a metal-fibril complex (e.g., Cu-cellulose) within the solution.
- a metal-fibril complex e.g., Cu-cellulose
- FIG. 20B is a graph of conductivities versus KOH solution concentration for bulk solution and the fabricated example of a metal-fibril complex (e.g., Cu-cellulose) within the solution.
- a metal-fibril complex e.g., Cu-cellulose
- FIG. 21 is a graph of measured current- voltage characteristics of NaCl in bulk solution and a fabricated example of a battery employing an aqueous metal-fibril complex (e.g., Cu-cellulose filled with diluted NaCl in solution).
- an aqueous metal-fibril complex e.g., Cu-cellulose filled with diluted NaCl in solution.
- FIG. 24A is a graph of the zeta-potential of cellulose fibers and oxidized/surface-charged cellulose under neutral pH for a cellulose concentration of -0.1%.
- FIG. 24D is a graph of conductivity versus KC1 concentration for a fabricated example of a cellulose membrane in KC1 solution before and after densification.
- FIG. 25A is a graph of current versus voltage of a fabricated example of a cellulose-based ionic transistor for different applied gate voltages.
- FIG. 27A is a graph of electrochemical impedance spectra (EIS) at different KC1 concentrations for a fabricated example of a chemically-modified, densified wood membrane.
- EIS electrochemical impedance spectra
- Elementary nanofibril A basic nanoscale, elongated structure comprised of a plurality of polymer molecular chains (e.g., 10-36 chains) stacked in parallel or antiparallel directions.
- nanofibrils can have an original (e.g., unmodified) diameter of 5nm or less.
- Metal-fibril complex A structure formed by one or more elementary nanofibrils, with metal ions coordinate-bonded between functional groups of adjacent polymer molecular chains within the nanofibrils.
- Bound liquid e.g ., bound water: Liquid within a structure that is in chemical combination with the structure, such that liquid cannot move within or through the structure.
- the cellulose elementary nanofibrils can be sourced from natural wood (e.g., trees), as discussed above.
- the natural wood can be any type of hard wood or softwood, such as, but not limited to, basswood, oak, poplar, ash, alder, aspen, balsa wood, beech, birch, cherry, butternut, chestnut, cocobolo, elm, hickory, maple, oak, padauk, plum, walnut, willow, yellow poplar, bald cypress, cedar, cypress, douglas fir, fir, hemlock, larch, pine, redwood, spruce, tamarack, juniper and yew.
- the cellulose elementary nanofibrils can be sourced from other fibrous plant sources (e.g., bamboo, grass, cotton, ramie fiber, etc.), bacteria sources, and/or any other fibrous cellulose source.
- the processing of the elementary cellulose nanofibrils from an initial source can employ a “top-down” approach to take advantage of an existing microstructure arrangement of the source material.
- the elementary cellulose nanofibrils within a piece of natural wood can be subjected to one or more of the chemical modifications described herein. The piece of natural wood can be cut in any direction with respect to its growth direction.
- hemicellulose Concurrent with the lignin removal, some, most or substantially all of the hemicellulose may also be removed. In some embodiments, all of the lignin and hemicellulose can be removed, thereby providing a cellulose- only structure. Exemplary processes for performing such delignification are described in, for example, International Publication No. WO 2018/191181, published October 18, 2018,
- the separated microfibrils and/or nanofibrils after fibrillation can be reassembled into a new structure.
- a slurry containing the separated microfibrils and/or nanofibrils can be vacuum-filtered and pressed to form a paper with random orientation of microfibrils and/or nanofibrils.
- the microfibrils and/or nanofibrils after fibrillation and chemical modification can be added to or incorporated with another material to form a final composite structure.
- the fibrillated microfibrils and/or nanofibrils that have been chemically modified can combined with another material to form a conductive electrode.
- microfibrils can be formed of cellulose, chitin, chitosan, or any combination thereof.
- Chitin is a structural polysaccharide made from chains of modified glucose and is found in the exoskeletons of insects, the cell walls of fungi, and certain hard structures in invertebrates and fish.
- the elementary nanofibrils can be formed of any polymer molecular chains (for example, polymer molecular chains having polar functional groups (e.g., hydroxyl, carboxyl)).
- polymers molecular can include, but are not limited to, other polysaccharides (e.g., starch, pectin), poly(vinyl chloride) (PVC), poly(vinyl alcohol) (PVA), poly(acrylic acid) (PAA), poly(ethylene oxide) (PEO), poly(acrylonitrile) (PAN), poly(ethyl methacrylate) (PEMA), poly(methyl methacrylate) (PMMA), poly(ethylene terephthalate) (PET), polyethylene (PE), poly(ethylene naphthalate) (PEN), polyamide (PA), poly(vinylidene chloride) (PVDC), and poly lactic acid (PLA).
- PVC poly(vinyl chloride)
- PVA poly(vinyl alcohol)
- PAA poly(acryl
- the metal ion treatment 220 is subsequent to the alkaline- solution immersing 216, for example, by dissolving a metal in the alkaline solution after the elementary nanofibril(s) have been immersed therein, or by immersing the elementary nanofibril(s) in a different solution containing the dissolved metal ions.
- the metal ions 222 can maintain a spacing, W2, between the polymer molecular chains 210 that is greater than the native spacing, Wi.
- the metal 222 can be any metal capable of forming a coordination bond with the functional groups of the polymer molecular chains 210, for example, Cu, Zn, Al, Ca, and/or, Fe.
- the Cu ions coordinate with the cellulose molecular chains by forming Cu(OH) 6 4 at 02, 03 sites of cellulose anhydrous glucose units (AGUs).
- the second ions 226 are provided in the high-concentration alkaline solution (e.g., NaOH, KOH, LiOH, etc.) used to open up the polymer molecular chains 210 in FIG. 2B, such that the immersing 216 (and potentially metal ion treatment 220) occurs simultaneous with the second ion treatment 224.
- the high-concentration alkaline solution e.g., NaOH, KOH, LiOH, etc.
- the second ion treatment 224 is subsequent to the metal ion treatment 220, for example, by dissolving the second ions in the alkaline solution after the dissolving the metal therein, or by immersing the metal-fibril complex in a different solution containing the second ions 226.
- the second ion treatment can include a solution containing an electrolyte for the desired second ions 226.
- the solution for second ion treatment 224 can include propylene carbonate (PC), ethylene carbonate (EC), dimethyl carbonate (DMC), ethylmethyl carbonate (EMC), and/or diethyl carbonate (DEC).
- the metal-fibril complex with intercalated second ions can then be subjected to solvent exchange treatment 228, where free water molecules 218 within the elementary nanofibril(s) are replaced by organic solvent molecules 230, as shown in FIG. 2E.
- the organic solvent of treatment 228 can be a polar aprotic solvent.
- the organic solvent can include DMF, DMSO, PC, acetone, and/or EGDGE.
- the solvent exchange treatment 228 can include immersing the metal-fibril complex in the organic solvent or washing the metal-fibril complex with the organic solvent.
- the immersing or washing may be repeated multiple times (e.g., at least three times) to ensure all free water 218 in the metal-fibril complex is removed.
- the second ions 226 are provided in the organic solvent, such that the second ion treatment 224 occurs simultaneous with the solvent exchange treatment 228.
- the solvent exchange treatment 228 is before or after the second ion treatment 224.
- the metal-fibril complex is formed as a solid-state structure with minimal to no free liquid therein (although there may otherwise be liquid molecules bound to the polymer molecular chains or other materials within the metal-fibril complex).
- the solvent exchange 228 and drying 232 treatments can be such that the total liquid (e.g., water) within the metal-fibril complex is less than 10 wt%, and preferably that the amount of bound liquid (e.g., water) within the metal-fibril complex is less than 8 wt%.
- the drying treatment 232 can include vacuum drying, freeze drying, and/or critical point drying.
- sub-nanometer channels 234 can be formed and tuned at the molecular scale, such that confinement of solvated ions 226 can be reduced to less than 1 nm. New transport phenomenon occurs within these sub-nm channels, where mobile ions are regulated by the charged walls and the confined spacing.
- the ionic conductivity along the cellulose molecular chains in the solid-state metal-fibril complex can be at least 10 4 S/cm (e.g., on the order of 10 3 S/cm).
- a fabricated example of a solid-state Cu-cellulose complex with Li ions had an ionic conductivity of 5 mS/cm at room temperature
- a fabricated example of a solid-state Cu-cellulose complex with Na ions had an ionic conductivity of 0.1 mS/cm.
- Such values are significantly higher than that offered by conventional solid polymer electrolytes, which have ionic conductivities in the range of 10 5 to 10 8 S/cm at room temperature.
- FIG. 3A shows an exemplary method 300 for fabricating a solid-state metal-fibril complex from one or more elementary nanofibrils.
- the method 300 can begin a process block 302, where a starting material for the elementary nanofibril(s) is prepared.
- the elementary nanofibril(s) can be formed of a naturally-occurring polysaccharide, for example, cellulose, chitin, chitosan, or any combination thereof.
- the preparing 302 can thus include obtaining a structure including the naturally-occurring elementary nanofibril(s) (e.g., piece of wood or other fibrous plant, exoskeleton of an insect, cell wall of fungi, shell of a shrimp, bacterial-produced cellulose fibers, etc.).
- the preparing 302 can include modifying the structure in preparation for chemical modification.
- the structure is a piece of wood or other fibrous plant, and the preparing 302 includes at least one of delignification, densification, fibrillation, and shaping (e.g., by twisting to form a cable).
- the starting material may be in fiber form, each fiber including a plurality of the elementary nanofibril(s), and the preparing 302 can include forming the starting material into a desired structure (e.g., paper, membrane, or a three- dimensional structure).
- a slurry containing the fibers can be formed into a paper using vacuum filtration and pressing.
- the method 300 can proceed to process block 304, where a first metal is dissolved in an alkaline solution.
- the alkaline solution can include sodium hydroxide (NaOH), potassium hydroxide (KOH), lithium hydroxide (LiOH), or combinations thereof.
- the first metal can be any metal capable of forming a coordination bond with the functional groups of the polymer molecular chains, for example, Cu, Zn, Al, Ca, and/or Fe.
- the method 300 can proceed to process block 306, where the elementary nanofibril(s) are immersed in an alkaline solution for a first time period.
- the alkaline solution can include sodium hydroxide (NaOH), potassium hydroxide (KOH), lithium hydroxide (LiOH), or combinations thereof.
- the immersion within the alkaline solution breaks the hydrogen bonds between functional groups (e.g., depotonation), thereby allowing the polymer molecular chains of the elementary nanofibril(s) to open up.
- the first time period may be relatively quickly, e.g., on the order of hours.
- the molecular structure of elementary fibrils may not be changed.
- concentration threshold for the alkaline solution the molecular structure of elementary fibrils may not be changed.
- concentrations below 5% (w/v) a phase change to the desired metal-fibril complex may not occur.
- the metal ion will primarily coordinate among the cellulose nanofibrils rather than within the cellulose nanofibrils (e.g., between the polymer molecular chains).
- the alkaline solution employed at process blocks 306-308 has a concentration between 5% (w/v) and the corresponding saturation concentration for the solution, for example,
- the method 300 can proceed to process block 310, where the metal-fibril complex is immersed in a solvent having second ions therein.
- the metal coordination bonds form channels between the adjacent polymer molecular chains of the elementary nanofibril(s), thereby allowing the second ions to intercalate within the elementary nanofibril(s) (e.g., within the channels between the polymer molecular chains) by diffusion.
- the second ions can be Li+, Na+, K+, Mg+, and/or proton (H+).
- the second ions can include a molecule that donates a proton, such as ammonium ion (e.g., NH 4 +).
- the second ions are provided in the alkaline solution of process blocks 306-308, in which case process block 310 may be considered an extension of 308.
- the immersion of process block 310 is in a solvent different from the alkaline solution.
- the solvent of process block 310 can include PC, EC, DMC, EMC, and/or DEC.
- an appropriate electrolyte or proton donor can be dissolved in the solvent.
- a Li-ion electrolyte can include LiCICL, LiPF 6 , LiBF4, LiTFSI, and/or LiFSI.
- a proton-donor can include ammonia, ammonium nitrate, ammonium chloride, ammonium sulfate, polyacrylic acid, and/or citric acid. Beyond those specific examples listed herein, other electrolytes and proton donors known in the art for the desired second ions could also be used.
- the method 300 can proceed to process block 312, where the metal-fibril complex is immersed in an organic solvent.
- the second ions of are provided in the organic solvent, in which case process block 312 may be considered an extension of process block 310.
- the immersion of process block 312 is in a solvent different from the solvent of process block 310. In either case, the immersion of 312 can be effective to replace free water molecules within the metal-fibril complex with molecules of the organic solvent.
- the organic solvent of treatment can be a polar aprotic solvent.
- the organic solvent can include DMF, DMSO, PC, acetone, and/or EGDGE.
- the organic solvent can be selected to provide a desired crystal structure for the final solid-state metal-fibril complex.
- use of DMSO and/or EGDGE as the organic solvent at process block 312 can yield substantially crystalline morphology for cellulose- based complexes
- use of DMF, PC, and/or acetone as the organic solvent at process block 312 can yield an amorphous morphology for cellulose-based complexes.
- the method 300 can proceed to process block 314, where the metal-fibril complex is dried to form a solid-state ion-conducting structure.
- the drying is effective to evaporate the organic solvent molecules from the metal-fibril complex, thereby maintaining the nanostructure of the elementary nanofibril(s), e.g., with the metal coordination bonds forming ion transport channels between the polymer molecular chains and second ions intercalated therein.
- the drying of process block 314 can be effect to remove all or most of free water from the metal-fibril complex.
- total water within the metal-fibril complex can be less than 10 wt%, and preferably bound water within the metal-fibril complex is less than 8 wt%.
- the drying of process block 314 can include vacuum drying, freeze drying, and/or critical point drying.
- process blocks 302-314 have been separately illustrated and described as occurring once, practical implementation of the disclosed embodiments may employ multiple repetitions of a particular process block before proceeding to the next process block.
- the second ion immersion 310 may be repeated multiple times to ensure sufficient intercalation of the second ions within the metal-fibril complex.
- the organic solvent immersion 312 may be repeated multiple times (or comprise a continuous washing with fresh solvent) to ensure sufficient removal of free water.
- FIG. 3 A illustrates a particular order for blocks 302-314
- embodiments of the disclosed subject matter are not limited thereto. Indeed, in certain embodiments, the blocks may occur in a different order than illustrated or simultaneously with other blocks.
- the metal dissolution of process block 304 can occur after the immersion during the first time period of process block 306 and/or at a same time as the immersion during the second time period of process block 308.
- FIG. 3B shows another exemplary method 350 for fabricating a solid-state metal-fibril complex from one or more elementary nanofibrils.
- Process blocks 302-308 of method 350 may be substantially similar to process blocks 302-308 of method 300 in FIG. 3A. However, after process block 308 and before introduction of any second ions into the metal-fibril complex, method 350 can proceed to process block 352, where the metal-fibril complex is immersed in an organic solvent. Similar to process block 312 of method 300, the immersion of 352 in method 350 can be effective to replace free water molecules within the metal-fibril complex with molecules of the organic solvent.
- the method 350 can proceed to process block 356, where the metal-fibril complex is immersed in a second organic solvent. Similar to process block 310, the immersion of 356 allows the second ions that are dissolved in the second organic solvent to intercalate within the elementary nanofibril(s) (e.g., within the channels between the polymer molecular chains) by diffusion.
- the second ions can be Li+, Na+, K+, Mg+, and/or proton (H+).
- the second ions can include a molecule that donates a proton, such as ammonium ion (e.g., NH 4 +).
- the second organic solvent can include DMF, DMSO, PC, acetone, and/or EGDGE.
- the method 350 can proceed to process block 358, where the metal-fibril complex is dried to form the final solid-state ion-conducting structure. Similar to process block 314 of method 300, the drying of 358 is effective to evaporate the second organic solvent molecules from the metal- fibril complex, thereby maintaining the nanostructure of the elementary nanofibril(s), e.g., with the metal coordination bonds forming ion transport channels between the polymer molecular chains and second ions intercalated therein.
- FIG. 3B illustrates a particular order for blocks 302-308 and 352-358
- the blocks may occur in a different order than illustrated or simultaneously with other blocks.
- the metal dissolution of process block 304 can occur after the immersion during the first time period of process block 306 and/or at a same time as the immersion during the second time period of process block 308.
- the resulting solid-state metal-fibril complex can be adapted for use as an ion-conducting structure and/or ion-selective structure in a particular application.
- the solid-state metal-fibril complex can be used as a solid electrolyte, conductive additive or backbone, and/or ion conductive structure (membrane, cable, etc.) in any type of electronic device or system, such as, but not limited to electrical energy storage devices (e.g., battery, supercapacitor, etc.), electrical power generation systems (e.g., fuel cell, thermoelectric power generation device, osmotic power generation device), ion regulation or separation devices (e.g., cationic separation membrane, transistor), ion conduction components (e.g., nanofluidic ion conductor, ion-conducting additive, solid-state electrolyte), and biological applications (e.g., ion regulation).
- electrical energy storage devices e.g., battery, supercap
- the solid-state metal-fibril complex can be formed as a substantially planar structure, for example, a membrane or sheet having a thickness of 10 pm to 1000 pm, preferably 100 pm or less.
- FIG. 4A shows an exemplary construction of a solid-state metal-fibril complex as a sheet 400 with random orientation of nanofibrils 402.
- Such a structure can result from chemical modification (e.g., performing method 300 or 350) of a paper starting material, for example, commercially-manufactured paper or paper formed by vacuum filtering and pressing of a slurry of the microfibrils and/or nanofibrils.
- the resulting sheet 400 can exhibits a smaller overall dimension than starting paper, for example, due to the collapse of internal pores (e.g., in the range of several microns to tens of microns) within the paper during the chemical modification.
- the sheet 400 can be formed by first performing the chemical modification (e.g., performing method 300 or 350) on elementary nanofibrils and then forming the resulting solid-state metal-fibril complex into a paper, for example, by vacuum filtering and pressing.
- the resulting sheet 400 can be relatively stable under high pH aqueous conditions, unlike conventional paper that is unstable and tends to swell when exposed to such aqueous conditions.
- FIG. 4D shows another exemplary configuration of a solid-state metal-fibril complex as a membrane 440 with ordered arrangement of nanofibrils.
- the membrane 440 can result from chemical modification (e.g., performing method 300 or 350) of a woven starting material, such as a textile of fabric (e.g., cotton).
- the woven starting material may include individual fibers 442 forming a regular array, each of the fibers 442 being formed of an aggregate of constituent elementary nanofibrils that are aligned with and follow the orientation of their associate fiber 442.
- the membrane 440 can be formed by first performing the chemical modification (e.g., performing method 300 or 350) on fibers 442 and then forming the weaving the solid-state metal-fibril complex into the patterned arrangement of membrane 440.
- FIGS. 4E-4F shows yet another exemplary configuration of a solid-state metal-fibril complex as a single modified nanofibril 460.
- the nanofibril 460 can result from chemical modification (e.g., performing method 300 or 350) on a fibrillated starting material.
- the nanofibril 460 includes metal ions 122 forming coordination bonds between functional groups of adjacent polymer molecular chains 110 to form ion transport channels 462 through the nanofibril 460, with second ions 126 intercalated between the polymer molecular chains 110 within the nanofibril 460.
- the nanofibril 460 (or an aggregate of nanofibrils 460) can be incorporated into other structures, components, or members to improve the ion conducting properties thereof.
- the nanofibril 460 can be integrated with another material to form an electrode of an electrical device.
- the solid-state metal-fibril complex can allow construction of a corresponding solid-state device, thereby avoiding potential performance issues associated with aqueous versions of such devices.
- the solid-state metal-fibril complex can be used as a solid-state electrolyte in a solid-state battery.
- the solid-state metal-fibril complex can be used as a conductive additive in one or both electrodes.
- the solid-state battery can be safer, provide an increased energy density, and/or offer greater flexibility with electrode material selection.
- solid-state batteries can be safer by avoiding leakage (e.g., no liquid to leak), providing low flammability, and/or having improved mechanical strength (e.g., due to the solid nature of the solid-state metal-fibril complex).
- leakage e.g., no liquid to leak
- mechanical strength e.g., due to the solid nature of the solid-state metal-fibril complex.
- the higher packing density of the solid-state battery can result in the improved energy density as compared to conventional liquid-electrolyte batteries.
- the electrochemical stability and fewer side reactions of the solid-state electrolyte can allow for broad compatibility with various anodes and cathodes.
- FIG. 5A shows an exemplary battery system 500 that can employ a solid-state ion conducting metal-fibril complex.
- the battery system 500 has a cathode 502 and an anode 506, each of which can be electrically coupled to an electrical circuit 508 (e.g., load, voltage source) by corresponding electrical connections 510.
- the battery system 500 can be configured as a solid- state system, with cathode 502 and anode 506 on opposite sides of and in contact with a separator membrane 504 that also acts a solid electrolyte.
- the separator membrane 504 can be or incorporate the solid-state metal-fibril complex, for example, having a construction as shown in any of FIGS.
- cathode 522 and anode 526 can also include a solid-state ion-conducting metal-fibril complex.
- cathode 522 and/or anode 526 can include a random arrangement of elementary nanofibrils, each of which is a solid-state metal-fibril complex having a construction as shown in FIGS. 4E-4F and/or was fabricated according to the method of any of FIGS. 3A-3B.
- the solid-state metal-fibril complexes may be considered an additive to the electrodes, with the elementary nanofibrils intermixed with the electrode materials (e.g., base material), and may improve the ion-conductivity of the respective electrode by at least an order of magnitude versus the electrode material alone.
- solid-state electrolyte 542 can be an oxide-based electrolytes (e.g., garnet LFLasZ ⁇ On, Perovskite Li 3.3 Lao .56 Ti0 3 ), sulfide-based electrolytes (e.g., L12S-P2S5, LiioGeP2Si2), or a polymer electrolytes (e.g., PEO, PVC, PMMA).
- oxide-based electrolytes e.g., garnet LFLasZ ⁇ On, Perovskite Li 3.3 Lao .56 Ti0 3
- sulfide-based electrolytes e.g., L12S-P2S5, LiioGeP2Si2
- a polymer electrolytes e.g., PEO, PVC, PMMA.
- the solid-state metal-fibril complexes as additives to the cathode 522 and/or anode 526 can improve the ion-conductivity
- FIG. 5D shows yet another exemplary battery system 560 that can employ a solid-state ion conducting metal-fibril complex.
- the battery system 560 has a cathode 502 and an anode 506, each of which can be electrically coupled to an electrical circuit 508 (e.g., load, voltage source) by corresponding electrical connections 510.
- an electrical circuit 508 e.g., load, voltage source
- a solid- state electrolyte 542 can be arranged between the cathode 502 and the anode 506, a solid- state electrolyte 542 can be arranged.
- the solid-state electrolyte 542 can be any type of conventional solid-state electrolyte.
- solid-state electrolyte 542 could instead be replaced with the separator membrane 504 of FIGS. 5A-5B.
- the electrolyte layer 566 is in contact with both the anode 506 and the solid-state electrolyte 542. However, in some embodiments, the electrolyte layer 566 may be in contact with one or none of the anode 506 and the solid-state electrolyte 542, for example, due to one or more intervening ion-conductive layers.
- the first electrolyte layer 564 and/or the second electrolyte layer 566 can each include or be formed of solid-state metal-fibril complexes, for example, having a construction as shown in any of FIGS. 4A-4D and/or fabricated according to the method of any of FIGS. 3A-3B.
- first electrolyte layer 564 and/or the second electrolyte layer 566 can each include solid-state metal-fibril complexes as an ion- conductive additives, for example, having a construction as shown in any of FIGS. 4E-4F.
- FIG. 5E shows another exemplary battery system 580 that can employ a solid-state ion conducting metal-fibril complex. Similar to the battery system 540 of FIG. 5C, the battery system 580 has a cathode 582 and an anode 586, each of which can be electrically coupled to an electrical circuit 508 (e.g., load, voltage source) by corresponding electrical connections 510, and the solid- state electrolyte 542 between the cathode 582 and the anode 586 can be any type of conventional solid-state electrolyte or replaced with the separator membrane 504 of FIGS. 5A-5B. However, in contrast to FIG.
- an electrical circuit 508 e.g., load, voltage source
- the battery system can be constructed as a lithium ion battery.
- the cathode can be formed of or include lithium cobalt oxide (LCO) (L1C0O2), lithium manganese oxide (LMO) (LiMmO ⁇ , lithium iron phosphate (LFP) (LiFePO C), lithium nickel cobalt manganese oxide (NMC) (LiNiCoMn02), lithium nickel manganese spinel (LNMO) (LiNio.5Mn1.5O4), lithium nickel cobalt aluminum oxide (NCA) (LiNiCoA10 2 ), and/or sulfur-carbon (S/C) composite.
- the anode can be formed of or include graphite, silicon, and/or carbon.
- the anode can include a solid piece of metal Li in contact with the separator membrane or the solid-state electrolyte layer.
- FIG. 6A shows an exemplary fuel cell system 600 that can employ an ion-conducting metal- fibril complex.
- the fuel cell system 600 has a cathode 602 and an anode 606, each of which can be electrically coupled to an electrical circuit 608 (e.g., load) by corresponding electrical connections 610.
- the cathode 602 and/or anode 606 can be formed of a metal, graphite, carbon composite, or carbon polymer composite.
- One or both of the cathode 602 and anode 606 can include an appropriate catalyst.
- the cathode 602 and anode 606 can be on opposite sides of and in contact with proton exchange membrane (PEM) 604.
- PEM proton exchange membrane
- Coupled to the cathode is a first manifold 612 that delivers an oxidizing agent to the cathode 602, for example, air or oxygen, and removes waste products (e.g., water) therefrom.
- a first manifold 612 that delivers an oxidizing agent to the cathode 602, for example, air or oxygen, and removes waste products (e.g., water) therefrom.
- another manifold 614 that delivers the chemical fuel to the anode 606, for example, hydrogen gas or other supply of protons, and removes unused fuel therefrom.
- the protons move from the anode 606 to the cathode 602 via PEM 604, while the electrons move from the anode 606 to the cathode 602 via the external circuit (e.g., electrical connections 610 and circuit 608), thereby producing electrical power for use by circuit 608.
- the protons, electrons, and oxidizing agent react at the cathode 602 to form water, which is removed by manifold 612.
- At least PEM 604 of fuel cell system 600 can be or incorporate the disclosed metal-fibril complex, for example, having a construction as shown in any of FIGS.
- cathode 602 and anode 606 can include or be formed of solid-state metal-fibril complexes, for example, similar to the construction of electrodes in FIGS. 5B-5E.
- the metal-fibril complex of PEM 604 can be initially formed as a solid-state component as described above. However, in operation, PEM 604 may be exposed to relatively high humidity levels that would otherwise raise the amount of motive water therein above the threshold for being considered solid-state. Nevertheless, the initial structure has a solid-state construction and reverts to such construction when removed from the high humidity operational environment.
- FIG. 6B shows an exemplary supercapacitor system 620 that can employ a solid-state ion conducting metal-fibril complex.
- the supercapacitor system 620 has current collecting electrodes 628, 630, each of which can be electrically coupled to an electrical circuit 634 (e.g., load, voltage source) by corresponding electrical connections 632. Between the electrodes 628, 630 is disposed a pair of solid-electrolyte layers 622, 626, with a separator membrane 624 disposed therebetween.
- an electrical circuit 634 e.g., load, voltage source
- the separator membrane 624 of supercapacitor system 620 can be formed of or incorporate the disclosed metal-fibril complex, for example, having a construction as shown in any of FIGS. 4A- 4D and/or fabricated according to the method of any of FIGS. 3A-3B.
- each of the solid- electrolyte layers 622, 626 include or be formed of solid-state metal-fibril complexes, for example, having a construction as shown in any of FIGS. 4A-4D and/or fabricated according to the method of any of FIGS. 3A-3B.
- the aqueous metal-fibril complexes 700 may enjoy similar properties and performance advantages as the solid-state metal-fibril complexes.
- the aqueous metal-fibril complexes can have high mechanical strength and solution stability.
- the polymer molecular chains 210 of the aqueous metal-fibril complex 700 provide ion transport channels (e.g., ⁇ 1 nm in diameter) with a relatively high surface area (e.g., -2400 m 2 /g).
- the aligned confinement and the weak attraction between the partially-hydrated ions and the channel walls e.g., formed by adjacent polymer molecular chains 210) can lead to a low-friction and rapid flow.
- FIG. 8A shows an exemplary method 800 for fabricating an aqueous metal-fibril complex from one or more elementary nanofibrils.
- the method 800 can begin at process block 802, where a starting material for the elementary nanofibril(s) is prepared.
- process block 802 can include by obtaining a structure including the naturally-occurring elementary nanofibril(s), modifying the structure in preparation for chemical modification, and/or forming the starting material into a desired structure, in a manner similar to that described in detail above for process block 302 in FIG. 3A.
- the method 800 can proceed to process block 804, where a first metal is dissolved in an alkaline solution.
- the alkaline solution can include NaOH, KOH, and/or LiOH
- the first metal can be any metal capable of forming a coordination bond with the functional groups of the polymer molecular chains, such as Cu, Zn, Al, Ca, and/or Fe.
- the method 800 can proceed to process block 806, where the elementary nanofibril(s) are immersed in the alkaline solution for a first time period, in order to break the hydrogen bonds between functional groups, thereby allowing the polymer molecular chains of the elementary nanofibril(s) to open up.
- the method 800 can proceed to process block 808, where the immersion in the alkaline solution is continued for a second time period, thereby forming a metal-fibril complex.
- the further immersion allows the metal ions previously dissolved in the alkaline solution (or otherwise added to the solution during the first and/or second time periods) to diffuse into the opened space between the polymer molecular chains and to form a coordination bond to the exposed functional groups of adjacent molecular chains.
- process blocks 804-808 can proceed in a manner similar to that described above for process blocks 304-308 in FIG. 3A.
- process blocks 802-814 have been separately illustrated and described as occurring once, practical implementation of the disclosed embodiments may employ multiple repetitions of a particular process block before proceeding to the next process block.
- the second ion immersion 810 may be repeated multiple times to ensure sufficient intercalation of the second ions within the metal-fibril complex.
- FIG. 8 illustrates a particular order for blocks 802-814, embodiments of the disclosed subject matter are not limited thereto. Indeed, in certain embodiments, the blocks may occur in a different order than illustrated or simultaneously with other blocks.
- the metal dissolution of process block 804 can occur after the immersion during the first time period of process block 806 and/or at a same time as the immersion during the second time period of process block 808.
- the polymer molecular chains of one or more elementary nanofibrils can be chemically modified without forming metal coordination bonds between the functional groups of the polymer molecular chains.
- aligned nanochannels can be formed between the elementary nanofibril, for example, cellulose nanofibrils produced from a wood structure.
- a wood structure 1000 is primarily composed of cellulose nanofibrils 1006, hemicellulose, and lignin 1002, with the three components intertwining with each other to form a strong and rigid wall structure.
- the charged surface of cellulose nanofibrils 1020 can attract layers of counter-ions adjacent to the nanofibrils, with an exponentially decaying ion concentration toward the center of an ion transport channel 1022, as shown in FIG. IOC.
- the interface-dominated electrostatic field surrounding the cellulose nanofibrils 1020 thus provides regulated ion transport along the fiber direction 1028.
- the surface charge, the geometry, and/or the molecular structure of cellulose can be tuned to modify the ion regulation capability of the resulting structure.
- the charge density and/or charge type of the functional groups of the polymer molecular chains can be modified by appropriate chemical treatment 1012.
- the elementary nanofibrils 1006 can be subjected to a TEMPO treatment to convert hydroxyl functional groups to carboxyl groups.
- the elementary nanofibrils 1006 can be subjected to a CHPTAC treatment to convert the surface charge of the functional groups from negative to positive.
- the method 1100 can proceed to process block 1104, where the initial piece of wood is subject to partial delignification (e.g., 95% or less of lignin removed) or full delignification (e.g., at least 95% of lignin removed) in order to expose the cellulose nanofibrils of the wood.
- delignification can be achieved by immersing the wood piece in a solution comprising chemicals used in pulping or pulp bleaching.
- the delignification of process block 1104 can comprise a single step chemical treatment, e.g., a single exposure to a single chemical or mixture of chemicals (e.g., a bath of H2O2).
- the chemical treatment for delignification can be a multi-step chemical treatment, e.g., a first exposure to a first chemical or mixture (e.g., a bath of NaOH and Na2SC>3) followed by a second exposure to a second chemical or mixture (e.g., a bath of H2O2, 2.5 mol/L), for example, to ensure complete removal of lignin and/or hemicellulose.
- a first chemical or mixture e.g., a bath of NaOH and Na2SC>3
- a second chemical or mixture e.g., a bath of H2O2, 2.5 mol/L
- the method 1100 can proceed to process block 1108, where the chemically-modified cellulose stmcture (e.g., membrane or paper) can be filled with an electrolyte for use as an ion conducting or ion selective structure (e.g., an ion separating device).
- the chemically- modified cellulose structure can be filled with aqueous electrolyte (e.g., KC1, NaCl, etc.) or a polymer electrolyte (e.g., NaOH-based polymer electrolyte).
- a metal contact 1308 (e.g., silver film or paste) can be disposed on a surface of the ion-conducting membrane 1302 and can act as a gate for the transistor 1300.
- a voltage source 1310 can be electrically connected to the gate contact 1308 to modulate operation of the transistor 1300.
- the ion-conducting membrane 1302 can be a chemically-modified cellulose-based ion conducting structure fabricated from wood, for example, using the method described above with respect to FIG. 11.
- An electrolyte concentration of one of the reservoirs 1404, 1406 can be substantially greater (e.g., at least lOx, lOOx, or lOOOx) than the electrolyte concentration in the other of the reservoirs 1404, 1406.
- reservoir 1404 can contain seawater having a concentration of 100 mmol/L of NaCl
- reservoir 1406 can contain fresh water having a concentration of 0.001 mmol/L of NaCl.
- the ion-conducting membrane 1402 can be a chemically-modified cellulose-based ion conducting structure fabricated from wood, for example, using the method described above with respect to FIG. 11.
- the cellulose-based membrane 1402 can be produced by extracting the lignin and hemicellulose from natural wood that has been vertically cut. After delignification, the naturally- aligned cellulose nanofibrils are retained and feature a negatively- charged surface.
- the ion-conducting membrane 1402 can be infiltrated with epoxy, for example, to block micro-sized lumens inherited from the original wood structure.
- the resulting polymer-filled membrane 1402 has aligned nanoscale channels along the wood growth direction that can remain open and that provide cation-selective fluidic pathways with negative surface charge due to the dissociation of the hydroxyl groups of the cellulose molecular chains.
- an electrical double layer formed along the nanocellulose of the membrane 1402 allows the cations to efficiently pass through the open nanochannels while impeding the transport of anions, thereby establishing an electrical potential in an opposite direction as the cation movement direction.
- a chemical treatment 1510 e.g., TEMPO or CHPTAC
- the chemically modified wood can then be subjected to densification 1512, for example, by pressing in a direction crossing the wood growth direction 1506, such that a thickness 1508 of the wood is reduced.
- the densification may be such that a final thickness 1522 has been reduced by at least 75% (e.g., by at least 90%) as compared to the original thickness 1508.
- the densification 1512 can reduce the amount of space between the wood cellulose fiber channels (e.g., pores 1502, lumen 1504), thereby removing larger diameter pathways that exceed the Debye length and ensuring the membrane’s dense structure, high strength, and high ionic conductivity.
- the wood cellulose fiber channels e.g., pores 1502, lumen 1504
- the chemical treatment 1510 can directly modify the cellulose and hemicellulose of wood using CHPTAC via etherification, thereby introducing cationic ions (CH3)3N + (e.g., at 1528) onto the surface of the nanofluidic channels between cellulose molecular chains 1524 for transport of ions 1526 therein.
- CH3N + cationic ions
- the resulting chemically-modified wood structure can thus act a cationic wood membrane.
- the quaternized cellulose was synthesized via a reaction between epoxide and cellulose sodium alkoxide. After chemical treatment with CHPTAC, the natural cellulose is converted into quaternized cellulose, which presents a positive charge in solution. Compared with the molecular structure of native cellulose, the resulting chemically- modified cellulose structure presents cationic functional groups (e.g., -(CH3) 3 N+) via the extended side chain of cellulose.
- cationic functional groups e.g., -(CH3) 3 N+
- process blocks 1602-1608 have been separately illustrated and described as occurring once, practical implementation of the disclosed embodiments may employ multiple repetitions of a particular process block before proceeding to the next process block. Moreover, although not separately illustrated in FIG. 16 or discussed above, method 1600 may also include rinsing or other intermediate processing steps between illustrated process blocks 1602-1608.
- the metal-fibril complex further comprises polysaccharide, poly(vinyl chloride) (PVC), poly(vinyl alcohol) (PVA), poly(acrylic acid) (PAA), poly(ethylene oxide) (PEO), poly(acrylonitrile) (PAN), poly(ethyl methacrylate) (PEMA), poly(methyl methacrylate) (PMMA), poly(ethylene terephthalate) (PET), polyethylene (PE), poly(ethylene naphthalate) (PEN), polyamide (PA), poly(vinylidene chloride) (PVDC), poly lactic acid (PL A), or combinations thereof.
- PVC poly(vinyl chloride)
- PVA poly(vinyl alcohol)
- PAA poly(acrylic acid)
- PEO poly(ethylene oxide)
- PAN poly(acrylonitrile)
- PEMA poly(ethyl methacrylate)
- PMMA poly(methyl methacrylate)
- PET poly(ethylene terephthalate)
- PET poly
- each elementary nanofibril comprises at least ten cellulose molecular chains, preferably, 12-36 cellulose molecular chains, inclusive.
- a device comprising an electrode or ion-conducting member, the electrode or ion conducting member having the ion-conducting structure of any of clauses 1-11 dispersed therein as a conductive additive.
- the device is constructed as a battery, a fuel cell, a supercapacitor, a transistor, a thermal power harvesting device, an electricity generating device, or an ion separating device.
- the device is constructed as a battery, a fuel cell, a supercapacitor, a transistor, a thermal power harvesting device, an electricity generating device, or an ion separating device.
- a battery comprising: first and second electrodes; and a separator membrane between the first and second electrodes, the separator membrane comprising a solid-state metal- fibril complex, wherein one of the first and second electrodes operates as a cathode and the other of the first and second electrodes operates as an anode, the solid-state metal-fibril complex is formed by a plurality of first nanofibrils, each first nanofibril being composed of a plurality of cellulose molecular chains with first functional groups, each first nanofibril having a plurality of first metal ions, each first metal ion acting as a first coordination center between the first functional groups of adjacent cellulose molecular chains so as to form a respective first ion transport channel through the separator membrane, and the solid-state metal-fibril complex comprises a plurality of second ions, each second ion being disposed within one of the first ion transport channels so as to be intercalated between the corresponding cellulose molecular chains.
- the first electrode, the second electrode, or both the first and second electrodes comprise a base material and an additive interspersed within the base material
- the additive comprises one or more second nanofibrils, each second nanofibril being composed of a plurality of second cellulose molecular chains with second functional groups, each second nanofibril having a plurality of second metal ions, each second metal ion acting as a second coordination center between the second functional groups of adjacent second cellulose molecular chains so as to form a respective second ion transport channel between the second cellulose molecular chains, each second nanofibril comprising a plurality of third ions, each third ion being disposed within a respective one of the second ion transport channels so as to be intercalated between the corresponding second cellulose molecular chains.
- a battery comprising: first and second electrodes, one of the first and second electrodes operating as a cathode and the other of the first and second electrodes operating as an anode; and a separator between the first and second electrodes, the separator comprising a solid- state electrolyte, the first electrode, the second electrode, or both the first and second electrodes comprise a solid-state metal-fibril complex, the solid-state metal-fibril complex is formed by a plurality of nanofibrils, each nanofibril being composed of a plurality of cellulose molecular chains with functional groups, each nanofibril having a plurality of metal ions, each metal ion acting as a coordination center between the functional groups of adjacent cellulose molecular chains so as to form a respective ion transport channel between the cellulose molecular chains, and the solid-state metal-fibril complex comprises a plurality of second ions, each second ion being disposed within one of the ion transport channels so as to
- the solid-state electrolyte comprises an oxide- based electrolyte, a sulfide-based electrolytes, a polymer electrolyte, or combinations thereof.
- the solid-state metal-fibril complex, the additive, or both the solid-state metal-fibril complex and the additive further comprise polysaccharide, poly(vinyl chloride) (PVC), poly(vinyl alcohol) (PVA), poly(acrylic acid) (PAA), poly(ethylene oxide) (PEO), poly(acrylonitrile) (PAN), poly(ethyl methacrylate) (PEMA), poly(methyl methacrylate) (PMMA), poly(ethylene terephthalate) (PET), polyethylene (PE), poly(ethylene naphthalate) (PEN), polyamide (PA), poly(vinylidene chloride) (PVDC), polylactic acid (PL A), or combinations thereof.
- PVC poly(vinyl chloride)
- PVA poly(vinyl alcohol)
- PAA poly(acrylic acid)
- PEO poly(ethylene oxide)
- PAN poly(acrylonitrile)
- PEMA poly(ethyl methacrylate)
- PMMA poly(
- each metal ion comprises copper (Cu), zinc (Zn), aluminum (Al), calcium (Ca), iron (Fe), or combinations thereof; and/or the second ions, the third ions, or both the second ions and the third ions comprise lithium (Li), sodium (Na), potassium (K), magnesium (Mg), or combinations thereof.
- the first electrode operates as the anode and comprises graphite, silicon, carbon, or combinations thereof; and/or the second electrode operates as the cathode and comprises lithium cobalt oxide (LCO) (LiCoCh), lithium manganese oxide (LMO) (LiMmCL), lithium iron phosphate (LFP) (LiFePCVC), lithium nickel cobalt manganese oxide (NMC) (LiNiCoMnCk), lithium nickel manganese spinel (LNMO) (LiNio . 5Mn1 . 5O4), lithium nickel cobalt aluminum oxide (NCA) (LiNiCoA10 2 ), sulfur-carbon (S/C) composite, or combinations thereof.
- LCO lithium cobalt oxide
- LMO lithium manganese oxide
- LFP lithium iron phosphate
- LiFePCVC lithium nickel cobalt manganese oxide
- NMC lithium nickel cobalt manganese oxide
- NMO lithium nickel manganese spinel
- NCA lithium nickel cobalt aluminum oxide
- each of the first and second electrodes is in contact with the separator membrane; and the separator membrane is constructed to operate as a solid-state electrolyte between the first and second electrodes.
- a method comprising: (a) forming a metal-fibril complex by immersing a plurality of elementary nanofibrils within an alkaline solution having a concentration of at least 5% (w/v) and a plurality of metal ions dissolved therein, each elementary nanofibril being composed of a plurality of cellulose molecular chains with functional groups, the immersing being such that hydrogen bonds between adjacent functional groups of the cellulose molecular chains are broken so as to expose the functional groups and such that the dissolved metal ions from the alkaline solution form coordination bonds with the exposed functional groups; (b) after (a), intercalating second ions between adjacent cellulose molecular chains of the metal-fibril complex by immersing the metal- fibril complex in a first solution having a plurality of the second ions dissolved therein; (c) after (a), replacing free water in the metal-fibril complex by immersing the metal-fibril complex in an organic solvent; and (d) after (c), after (
- the elementary nanofibrils further comprise polysaccharide, poly(vinyl chloride) (PVC), poly(vinyl alcohol) (PVA), poly(acrylic acid) (PAA), poly (ethylene oxide) (PEO), poly(acrylonitrile) (PAN), poly(ethyl methacrylate) (PEMA), poly(methyl methacrylate) (PMMA), poly(ethylene terephthalate) (PET), polyethylene (PE), poly(ethylene naphthalate) (PEN), polyamide (PA), poly(vinylidene chloride) (PVDC), polylactic acid (PL A), or combinations thereof.
- PVC poly(vinyl chloride)
- PVA poly(vinyl alcohol)
- PAA poly(acrylic acid)
- PEO poly (ethylene oxide)
- PAN poly(acrylonitrile)
- PEMA poly(ethyl methacrylate)
- PMMA poly(methyl methacrylate)
- PET polyethylene terephthalate
- PET polyethylene
- the organic solvent comprises dimethylformamide (DMF), dimethyl sulfoxide (DMSO), propylene carbonate (PC), acetone, ethylene glycol diglycidyl ether (EGDGE), or combinations thereof.
- DMF dimethylformamide
- DMSO dimethyl sulfoxide
- PC propylene carbonate
- acetone ethylene glycol diglycidyl ether
- each elementary nanofibril has a diameter less than 5 nm and comprises at least ten cellulose molecular chains, preferably 12-36 cellulose molecular chains.
- An ion-conducting structure comprising: a metal-fibril complex formed by one or more elementary nanofibrils, each elementary nanofibril being composed of a plurality of polymer molecular chains with functional groups, each elementary nanofibril having a plurality of metal ions, each metal ion acting as a coordination center between the functional groups of adjacent molecular chains so as to form a respective ion transport channel between the molecular chains.
- a battery comprising: first and second electrodes, one of the first and second electrodes operating as a cathode and the other of the first and second electrodes operating as an anode; and a solid electrolyte membrane between the first and second electrodes, wherein the first electrode, the second electrode, the solid electrolyte membrane, or any combination thereof comprises the ion-conducting structure of any of clauses 43-55.
- the cathode comprises lithium cobalt oxide (LCO) (LiCoC ), lithium manganese oxide (LMO) (LiMmC ), lithium iron phosphate (LFP) (LiFePCVC), lithium nickel cobalt manganese oxide (NMC) (LiNiCoMnCk), lithium nickel manganese spinel (LNMO) (LiNio . 5Mn1 . 5O4), lithium nickel cobalt aluminum oxide (NCA) (LiNiCoA10 2 ), sulfur-carbon (S/C) composite, or combinations thereof.
- LCO lithium cobalt oxide
- LMO lithium manganese oxide
- LFP lithium iron phosphate
- LiFePCVC lithium nickel cobalt manganese oxide
- NMC LiNiCoMnCk
- LNMO lithium nickel manganese spinel
- NCA lithium nickel cobalt aluminum oxide
- S/C sulfur-carbon
- a fuel cell comprising: first and second electrodes, one of the first and second electrodes operating as a cathode and the other of the first and second electrodes operating as an anode; and a proton exchange membrane between the first and second electrodes, wherein the first electrode, the second electrode, the proton exchange membrane, or any combination thereof comprises the ion-conducting structure of any of clauses 43-55.
- a method comprising: (a) forming a metal-fibril complex by immersing a plurality of elementary nanofibrils within an alkaline solution and a plurality of metal ions dissolved therein, each elementary nanofibril being composed of a plurality of polymer molecular chains with functional groups, the immersing being such that hydrogen bonds between adjacent functional groups of the polymer molecular chains are broken so as to expose the functional groups and such that the dissolved metal ions from the alkaline solution form coordination bonds with the exposed functional groups.
- the elementary nanofibrils comprise polysaccharide, poly(vinyl chloride) (PVC), poly(vinyl alcohol) (PVA), poly(acrylic acid) (PAA), poly(ethylene oxide) (PEO), poly(acrylonitrile) (PAN), poly(ethyl methacrylate) (PEMA), poly(methyl methacrylate) (PMMA), poly(ethylene terephthalate) (PET), polyethylene (PE), poly(ethylene naphthalate) (PEN), polyamide (PA), poly(vinylidene chloride) (PVDC), polylactic acid (PL A), or combinations thereof.
- PVC poly(vinyl chloride)
- PVA poly(vinyl alcohol)
- PAA poly(acrylic acid)
- PEO poly(ethylene oxide)
- PAN poly(acrylonitrile)
- PEMA poly(ethyl methacrylate)
- PMMA poly(methyl methacrylate)
- PET poly(ethylene terephthalate)
- PET polyethylene
- each polymer molecular chain comprises a naturally-occurring polysaccharide.
- the ionic conductivity was p R-WD ' J orders of magnitudes higher that most solid polymer electrolytes.
- PEO-based polymer electrolytes have ionic conductivity of 10 6 -10 8 S/cm.
- FIG. 20C shows the mobility enhancement due to the reduced hydration number of sodium and potassium.
- a membrane for selective ion diffusion (that is, the ability of the cellulose membrane to selectivity impregnate Na-i- ions and repel OH- ions of the NaOH solution that is in equilibrium with the cellulose membrane) was composed of well-aligned cellulose nanofibrils and is fabricated by a scalable method that involves cutting natural wood perpendicular to the fiber growth direction followed by a delignification process that involves using high concentration NaOH. The formation of cellulose II in the resulting membrane leads to Na-cellulose complex formation after electrolyte infiltration.
- Oxidation of 2,2,6,6-tetramethylpiperidine-l-oxyl enhances the negative charge density of the cellulose nanofibrils, which leads to additional enhancement in the thermally generated voltage (up to 24 mV K-l).
- FIG. 22A shows the charge density of the natural wood, cellulosic membrane and TEMPO- oxidized cellulosic membrane.
- FIG. 22B shows the conductance of the cellulosic membrane measured at different NaOH concentrations.
- FIG. 22C shows measured differential thermal voltage of various solutions and wood-based structures, in particular: aqueous NaOH solution, polymer electrolyte (NaOH + PEO + deionized water), polymer electrolyte infiltrated into the natural wood, the randomized cellulosic fibers, the cellulosic membrane and the oxidized cellulosic membrane (poly(ethylene oxide), PEO).
- the differential thermal voltage increases from 6.5 to 10 mV K -1 after adding PEO to the bulk NaOH solution .
- the value increases further from 18 to 24 mV K -1 for the devices composed of aligned and oxidized delignified wood, respectively.
- thermoelectric device With this material a flexible and biocompatible ionic thermoelectric device can be manufactured at large-scale with potential in a range of applications, such as low-grade waste heat recovery (e.g., thermal power harvesting device) and skin electronics.
- This approach demonstrates the use of nanoscale engineering to improve ionic thermoelectric performance while utilizing sustainable materials.
- a significant enhancement in the thermally-generated voltage was demonstrated after infiltrating electrolyte into a cellulosic membrane due to enhanced ionic selectivity within the charged molecular chains in conjunction with the synergistic Soret effect.
- the overall conductivity trend can be fitted using the following equation:
- epoxide was provided in situ from CHPTAC, and quatemized cellulose could be synthesized via the reaction between the epoxide and cellulose sodium alkoxide.
- CHPTAC a mixed solution containing sodium hydroxide, urea, and distilled water
- quatemized cellulose could be synthesized via the reaction between the epoxide and cellulose sodium alkoxide.
- CHPTAC chemical treatment with CHPTAC for ten hours, the natural wood was converted into quatemized wood, which presents a positive charge in electrolyte solution.
- the main reaction is the cationization reaction of cellulose, as well as the quaternized hemicelluloses due to the similar functional groups as cellulose.
- the high proton conductivity of the chitosan-Cu was measured by placing two steel metal foils on the two ends of a chitosan-Cu stripe in a temperature and humidity-controlled box. Resistances of the chitosan-Cu proton conductor were measured by EIS. The proton conductivity s
- the as-prepared wood hydrogel also demonstrates unique optical and ion transport properties, including high transparency, optical anisotropy, and nanofluidic ionic behavior.
- FIGS. 5A-6B, 9, 12-14, the above-described cationic membrane, and Examples 1-12 can be combined with any other of FIGS. 5A-6B, 9, 12-14, the above-described cationic membrane, and Examples 1-11 to provide other systems and embodiments not otherwise illustrated or specifically described herein. Any of the features illustrated or described with respect to the methods of FIGS. 3A-3B, 8,
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Abstract
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| CA3146759A CA3146759A1 (en) | 2019-08-22 | 2020-08-21 | Ion-conducting structures, devices including ion-conducting structures, and methods for use and fabrication thereof |
| EP20855649.8A EP4018501A4 (en) | 2019-08-22 | 2020-08-21 | ION-CONDUCTING STRUCTURES, DEVICES WITH ION-CONDUCTING STRUCTURES AND METHODS FOR THEIR USE AND PRODUCTION |
| KR1020227009387A KR20220052345A (en) | 2019-08-22 | 2020-08-21 | ION-CONDUCTING STRUCTURES, devices comprising ion-conducting structures, and methods of using and making the same |
| JP2022512356A JP7650083B2 (en) | 2019-08-22 | 2020-08-21 | Ionically conductive structures, devices including ionically conductive structures, and methods of using and making same |
| US17/271,859 US11374255B2 (en) | 2019-08-22 | 2020-08-21 | Ion-conducting structures, devices including ion-conducting structures, and methods for use and fabrication thereof |
| CN202080073909.3A CN114730903A (en) | 2019-08-22 | 2020-08-21 | Ion-conducting structures, devices including ion-conducting structures, and methods of using and making the same |
| US17/750,062 US11901505B2 (en) | 2019-08-22 | 2022-05-20 | Ion-conducting structures, devices including ion-conducting structures, and methods for use and fabrication thereof |
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| WO2020092464A1 (en) | 2018-10-30 | 2020-05-07 | The Research Foundation For The State University Of New York | Compositions and methods for removal of negatively charged impurities using metal-cellulose fiber composite |
| US11926680B2 (en) * | 2019-10-02 | 2024-03-12 | University Of Louisiana At Lafayette | High-performance anodes for lithium ion batteries |
| FR3119713B1 (en) * | 2021-02-05 | 2022-12-30 | Univ Grenoble Alpes | Composition for the manufacture of electrode, electrode and associated method |
| CN113571721B (en) * | 2021-07-22 | 2022-12-23 | 北京航空航天大学 | Seawater power generation device and method of use thereof |
| US20240429394A1 (en) * | 2021-11-30 | 2024-12-26 | Zeon Corporation | Conductive material paste for non-aqueous electrolyte solution secondary battery, slurry composition for non-aqueous electrolyte solution secondary battery negative electrode, negative electrode for non-aqueous electrolyte solution secondary battery, and non-aqueous electrolyte solution secondary battery |
| CN114990618B (en) * | 2022-05-18 | 2023-12-19 | 浙江工业大学 | Preparation method and application of biomass carbon aerogel electrocatalytic deuterium separation material |
| CN115483389B (en) * | 2022-09-16 | 2025-02-14 | 惠州锂威新能源科技有限公司 | Silicon-based negative electrode active material, negative electrode sheet and lithium-ion battery |
| KR102726297B1 (en) * | 2022-11-22 | 2024-11-06 | 국립공주대학교 산학협력단 | Thermochromic windowpane using graphine, pdlc and transparent wood with electric conductivity and thermochromic smart window including the same |
| CN116111095A (en) * | 2023-04-07 | 2023-05-12 | 宁德新能源科技有限公司 | A positive pole piece, an electrochemical device and an electronic device |
| KR102866987B1 (en) * | 2023-07-28 | 2025-10-01 | 한양대학교 산학협력단 | Porous polyetherimide/aramid nanofiber composite layer and second battery having the same |
| CN118867238A (en) * | 2024-06-14 | 2024-10-29 | 北京新能源汽车股份有限公司 | Dual-functional additive and preparation method and application thereof |
| CN119018949A (en) * | 2024-07-30 | 2024-11-26 | 盐城师范学院 | Preparation of room temperature and near room temperature suspended water and molecular chain networks containing pure ions of water by the limited confinement method of charged ionized water |
| CN119601759B (en) * | 2024-11-07 | 2025-10-14 | 华南理工大学 | A copper-coordinated cationic cellulose nanofibril solid electrolyte and its preparation method and application |
| CN119650682A (en) * | 2025-01-16 | 2025-03-18 | 惠州亿纬锂能股份有限公司 | Positive electrode material composition, positive electrode sheet and preparation method thereof, and lithium ion battery |
| CN119871624B (en) * | 2025-01-24 | 2025-12-02 | 广西大学 | Flexible Wood-Based Thin Films Loaded with Silver Nanowires Based on Beveled Wood Blocks and Their Preparation Method |
| CN121238162B (en) * | 2025-12-01 | 2026-02-27 | 浙江大学衢州研究院 | A bamboo nanofiber separator and its application in aqueous zinc-ion batteries |
Family Cites Families (7)
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|---|---|---|---|---|
| JP3648447B2 (en) * | 2000-12-08 | 2005-05-18 | トヨタ自動車株式会社 | Ionic conductive polymer and ionic conductor |
| EP2996470A4 (en) * | 2013-05-16 | 2017-04-19 | University of Maryland, College Park | Process for simultaneous extraction and separation of esterified and unesterified monohydroxycarotenoids |
| CN103579562B (en) * | 2013-11-01 | 2017-01-04 | 中国科学院青岛生物能源与过程研究所 | A kind of lithium battery fire-retardant cellulose barrier film and preparation method thereof |
| JP6721952B2 (en) * | 2015-07-14 | 2020-07-15 | 国立大学法人九州大学 | Nanocellulose membrane used as fuel cell and electrolyte membrane |
| KR102699849B1 (en) * | 2017-03-29 | 2024-08-29 | 유니버시티 오브 매릴랜드, 칼리지 파크 | Solid-state hybrid electrolyte, method for preparing the same and uses thereof |
| CN108428841B (en) * | 2018-03-26 | 2021-01-29 | 中国科学院青岛生物能源与过程研究所 | A kind of cellulose nanofibril/metal organic framework composite lithium ion battery separator and preparation method |
| CN108641100B (en) * | 2018-05-22 | 2021-01-22 | 中南林业科技大学 | Preparation method of high-ionic-conductivity nanocellulose/polyvinyl alcohol hydrogel film |
-
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-
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Non-Patent Citations (6)
| Title |
|---|
| DONG ET AL.: "Cation-Induced Hydrogels of Cellulose Nanofibrils with Tunable Moduli", BIOMACROMOLECULES, vol. 14, no. 9, September 2013 (2013-09-01), pages 3338 - 3345, XP055792818 * |
| ENDO TAKATSUGU, HOSOMI SHOTA, FUJII SHUNSUKE, NINOMIYA KAZUAKI, TAKAHASHI KENJI: "Anion Bridging-Induced Structural Transformation of Cellulose Dissolved in Ionic Liquid", THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, vol. 7, no. 24, December 2016 (2016-12-01), pages 5156 - 5161, XP055792817 * |
| KIM JUNG-HWAN, GU MINSU, LEE DO HYUN, KIM JEONG-HOON, OH YEON-SU, MIN SA HOON, KIM BYEONG-SU, LEE SANG-YOUNG: "Functionalized Nanocellulose-Integrated Heterolayered Nanomats toward Smart Battery Separators", ACS NANOLETTERS, vol. 16, no. 9, September 2016 (2016-09-01), pages 5533 - 5541, XP055792826 * |
| LI TIAN, ZHANG XIN, LACEY STEVEN D., MI RUIYU, ZHAO XINPENG, JIANG FENG, SONG JIANWEI, LIU ZHONGQI, CHEN GUANG, DAI JIAQI, YAO YON: "Cellulose ionic conductors with high differential thermal voltage for low-grade heat harvesting", NATURE MATERIALS, vol. 18, no. Issue 6, June 2019 (2019-06-01), pages 608 - 613, XP036787741 * |
| See also references of EP4018501A4 * |
| SHAO CHANGYOU, CHANG HUANLIANG, WANG MENG, XU FENG, YANG JUN: "High-Strength, Tough, and Self-Healing Nanocomposite Physical Hydrogels Based on the Synergistic Effects of Dynamic Hydrogen Bond and Dual Coordination Bonds", ACS APPLIED MATERIALS & INTERFACES, vol. 9, no. Issue 34, August 2017 (2017-08-01), pages 28305 - 28318, XP055792820 * |
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| US11374255B2 (en) | 2022-06-28 |
| US20220359903A1 (en) | 2022-11-10 |
| CA3146759A1 (en) | 2021-02-25 |
| US20210202978A1 (en) | 2021-07-01 |
| AU2020331993A1 (en) | 2022-02-24 |
| EP4018501A4 (en) | 2024-12-04 |
| US11901505B2 (en) | 2024-02-13 |
| CN114730903A (en) | 2022-07-08 |
| KR20220052345A (en) | 2022-04-27 |
| EP4018501A1 (en) | 2022-06-29 |
| JP2022545029A (en) | 2022-10-24 |
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