WO2022104027A1 - All-scale self-assembly and precise positioning of supraparticles - Google Patents
All-scale self-assembly and precise positioning of supraparticles Download PDFInfo
- Publication number
- WO2022104027A1 WO2022104027A1 PCT/US2021/059097 US2021059097W WO2022104027A1 WO 2022104027 A1 WO2022104027 A1 WO 2022104027A1 US 2021059097 W US2021059097 W US 2021059097W WO 2022104027 A1 WO2022104027 A1 WO 2022104027A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- solvent
- building blocks
- supraparticles
- recessed regions
- nanoparticles
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N1/00—Microorganisms; Compositions thereof; Processes of propagating, maintaining or preserving microorganisms or compositions thereof; Processes of preparing or isolating a composition containing a microorganism; Culture media therefor
- C12N1/20—Bacteria; Culture media therefor
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/435—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
- C07K14/46—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates
- C07K14/47—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates from mammals
- C07K14/4701—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates from mammals not used
- C07K14/4732—Casein
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J13/00—Colloid chemistry, e.g. the production of colloidal materials or their solutions, not otherwise provided for; Making microcapsules or microballoons
- B01J13/02—Making microcapsules or microballoons
- B01J13/06—Making microcapsules or microballoons by phase separation
- B01J13/08—Simple coacervation, i.e. addition of highly hydrophilic material
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22F—WORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
- B22F9/00—Making metallic powder or suspensions thereof
- B22F9/16—Making metallic powder or suspensions thereof using chemical processes
- B22F9/18—Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds
- B22F9/24—Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds starting from liquid metal compounds, e.g. solutions
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B13/00—Oxygen; Ozone; Oxides or hydroxides in general
- C01B13/14—Methods for preparing oxides or hydroxides in general
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B19/00—Selenium; Tellurium; Compounds thereof
- C01B19/007—Tellurides or selenides of metals
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B33/00—Silicon; Compounds thereof
- C01B33/113—Silicon oxides; Hydrates thereof
- C01B33/12—Silica; Hydrates thereof, e.g. lepidoic silicic acid
- C01B33/14—Colloidal silica, e.g. dispersions, gels, sols
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01G—COMPOUNDS CONTAINING METALS NOT COVERED BY SUBCLASSES C01D OR C01F
- C01G49/00—Compounds of iron
- C01G49/02—Oxides; Hydroxides
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01G—COMPOUNDS CONTAINING METALS NOT COVERED BY SUBCLASSES C01D OR C01F
- C01G49/00—Compounds of iron
- C01G49/02—Oxides; Hydroxides
- C01G49/06—Ferric oxide [Fe2O3]
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01G—COMPOUNDS CONTAINING METALS NOT COVERED BY SUBCLASSES C01D OR C01F
- C01G49/00—Compounds of iron
- C01G49/02—Oxides; Hydroxides
- C01G49/08—Ferroso-ferric oxide [Fe3O4]
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01G—COMPOUNDS CONTAINING METALS NOT COVERED BY SUBCLASSES C01D OR C01F
- C01G7/00—Compounds of gold
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07H—SUGARS; DERIVATIVES THEREOF; NUCLEOSIDES; NUCLEOTIDES; NUCLEIC ACIDS
- C07H21/00—Compounds containing two or more mononucleotide units having separate phosphate or polyphosphate groups linked by saccharide radicals of nucleoside groups, e.g. nucleic acids
- C07H21/04—Compounds containing two or more mononucleotide units having separate phosphate or polyphosphate groups linked by saccharide radicals of nucleoside groups, e.g. nucleic acids with deoxyribosyl as saccharide radical
-
- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G73/00—Macromolecular compounds obtained by reactions forming a linkage containing nitrogen with or without oxygen or carbon in the main chain of the macromolecule, not provided for in groups C08G12/00 - C08G71/00
- C08G73/02—Polyamines
- C08G73/0273—Polyamines containing heterocyclic moieties in the main chain
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22F—WORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
- B22F1/00—Metallic powder; Treatment of metallic powder, e.g. to facilitate working or to improve properties
- B22F1/05—Metallic powder characterised by the size or surface area of the particles
- B22F1/054—Nanosized particles
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22F—WORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
- B22F2301/00—Metallic composition of the powder or its coating
- B22F2301/25—Noble metals, i.e. Ag Au, Ir, Os, Pd, Pt, Rh, Ru
- B22F2301/255—Silver or gold
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2002/00—Crystal-structural characteristics
- C01P2002/10—One-dimensional structures
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2002/00—Crystal-structural characteristics
- C01P2002/20—Two-dimensional structures
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2004/00—Particle morphology
- C01P2004/01—Particle morphology depicted by an image
- C01P2004/03—Particle morphology depicted by an image obtained by SEM
Definitions
- the present disclosure generally relates to a method of assembling building blocks into supraparticles, and more particularly, a method of assembling microscopic building blocks or nanoparticles into supraparticles.
- Emulsion-based selfassembly strategies are ideal for superstructuring because of their simplicity and unnecessity of chemicals modifications.
- their long-standing downsides comprise of the polydisperse size distribution of emulsion droplets, the nuisance caused by employing emulsifiers (e.g., surfactants), and the difficulty in accurate positioning because of their unfixed fluid properties, which overall hinder governing the size, uniformity, and applications of the self-assembled supraparticles.
- a method of assembling building blocks into supraparticles comprising: applying a first solvent on a template of patterned recessed regions to wet surfaces of the recessed regions; applying a second solvent on the template of patterned recessed regions, the building blocks suspended in the second solvent; wherein the first solvent and the second solvent are partially miscible, resulting in negligible interfacial surface tension between the first and second solvents; and wherein droplets of the second solvent diffuse droplets of the first solvent in the recessed regions, thereby assembling the building blocks into the supraparticles in the recessed regions.
- a solvent system comprising: a first solvent, the first solvent being 1 -butanol, a second solvent, the second solvent being water; building blocks configured to be suspended in the second solvent and to be assembled into supraparticles, the building blocks being selected from a group consisting of SiCh nanoparticles, FesC nanoparticles, polydopamine (PDA) nanoparticles, gold nanoparticles, CdTe quantum dots, FeOOH nanorods, and Fe2Os nanodiscs; and wherein a solubility between the first solvent and the second solvent is 0.5 wt.% to 35 wt.%.
- FIGS. 1 a-1 e is a schematic illustration of the self-assembly of supraparticles within the recessed regions based on two kinds of partially miscible solvent.
- FIGS. 2a-2h are SEM images of supraparticles confined within the template micro-holes (FIGS. 2a and 2b), uncovered by partially etching the template surface using oxygen plasma treatment (FIG. 2c), SEM image of supraparticles in a cross-sectional view (FIG. 2d), dark-field optical image (FIG. 2e), SEM images of the collected supraparticles after removing the template (FIGS. 2f and 2g), and the corresponding size distribution of the supraparticles (FIG. 2h).
- FIGS. 3a-3h are illustrations of tuning the size of the assembled supraparticles by increasing the nanoparticle concentration in the solution.
- FIGS. 4a-4e are illustrations of tuning the size of the assembled supraparticles by increasing the size of the micro-holes in the template.
- FIG. 5 are SEM images of supraparticles constructed by different nanostructured materials with various shapes and compositions as building blocks.
- FIG. 6 is an illustration of the self-assembly of supraparticles ranging from millimeter (right) to nanometer (left).
- FIGS. 7a-7b are illustrations of tuning the shape of supraparticles under an external magnetic field
- FIG. 7a is optical and SEM images of the shape evolution of assembled FesO4 supraparticles from a quasi-spherical to ellipsoidal structure by changing the intensity of the applied magnetic field
- FIG. 7b is an SEM image of a one-dimensional (1 D) and head-to-tail chain of the ellipsoidal supraparticles under the magnetic assembly.
- FIGS. 8a-8d are schematic illustration of the self-assembly mechanism of the tumbler-like supraparticles under the magnetic field (FIG. 8a), an optical image (FIG. 8b) and SEM image (FIG. 8c) of the tumbler-like supraparticles of SiO2 and FesO4 nanoparticles as building-blocks, and an SEM image of a onedimensional (1 D) and head-to-tail chain of the tumbler-like supraparticles aligned along the magnetic field (FIG. 8d).
- FIGS. 9a-9d are illustrations of supraparticle assembling within various templating holes, wherein FIGS. 9a-9c are SEM images of SiO2 supraparticles assembled in the cylindrical, cylindrical-dimer, and inverted pyramid microholearray film, respectively, which is also suitable for FIG. 9d, the cylindrical trimer and tetramer microhole-array film, and the microhole-array with an irregular shape, and wherein the irregular shape of the microholes in FIG. 9d evolved from the cylindrical tetramer microholes when their inner walls were breaking.
- FIGS. 10a-10f are illustrations of assembling chitosan supraparticles with different sizes by decreasing the concentration of the chitosan monomers.
- FIGS. 11a-11 c are illustrations of supraparticles assembled from biological building blocks, including casein proteins (FIG. 11a), fish sperm DNA (FIG. 11 b), and cells of micrococcus lysodeikticus (FIG. 11 c).
- FIGS. 12a-12c are illustrations of supraparticles assembled from Ions, wherein the growth of the cube-like micro-crystals of the sodium chloride (NaCI) (FIG. 12a), the ‘rice-like’ micro-crystals of the sodium sulfite (Na2SOs) with a long crack in the middle (FIG. 12b), and the ‘flower- like’ micro-crystalline sodium sulfide (Na2SO4) (FIG. 12c).
- NaCI sodium chloride
- Na2SOs sodium sulfite
- FIG. 12c the ‘flower- like’ micro-crystalline sodium sulfide
- FIGS. 13a-13e is an illustration of the fabrication of a microhole-array PS film replicated from a Silicon wafer via a PDMS soft lithograph strategy.
- This presented disclosure relates to a method for all-scale self-assembly of supraparticles and realizing their precise positioning in recessed regions based on two or more kinds of solvents with a partial miscibility, for example, water into butanol or pentanol.
- a partial miscibility for example, water into butanol or pentanol.
- diffusion of water into 1 -butanol depletes the emulsion droplets and drives the self-assembly of the building blocks within the templates, producing well-defined supraparticles with the positional order defined by the template.
- an external stimulus e.g., magnetic or electric fields
- This method is relatively simple, time saving, low-cost, scalable and versatile, which are crucial advantages, for example, for the future development of advanced precision manufacturing.
- the supraparticles for example, can be used for electronic displays, display panels, semiconductor devices, electronic devices, drug carriers and biosensors, for nanoscale fabrication of protein chips, cell sorting, and/or an energy production and storage material.
- the disclosure describes a method for producing supraparticles and precisely positioning in designed recessed regions based on two or more solvents with partial miscibility.
- the partial miscibility of the two more solvents can be defined as solvents that can be partially miscible with each other.
- the solubility between the solvents can be, for example, in the range from 0.5 wt.% to 35 wt.%, and more preferably, 15 wt.% to 30 wt.%, such as, but not limited to, for example, to water in 1 -butanol (20.1 wt.%), etc.
- the solubility between the solvents can be critical to forming the transient emulsion droplets containing the target building blocks. For example, a too high solubility will mix the first and second solvents relatively quickly without the formation of the transient emulsion droplets. Alternatively, a too low solubility will also make it difficult to form the emulsion droplets because the first and second solvents prefer to remain in separate phases.
- the loss of (the second) solvent drives the aggregation of the building blocks.
- FIGS. 1a-1e shows a schematic representation of the self-assembly and positioning procedure based on two partially-miscible solvents. The detailed steps of this method are described below.
- Step l
- a first solvent one of the pure solvents
- the first solvent can be introduced into the substrate by, for example, dropping, dipping, or wetting, etc.
- the plurality of recessed regions can be, for example, holes and grooves in a form of an array and/or an irregular pattern.
- the size of the recessed regions is not limited to any particular size, and should be, for example, larger than or equal to the size of the building blocks, (e.g. solid particles).
- the plurality of recessed regions can be fabricated on the substrate, for example, by conventional lithography strategies, imprinting strategies, a breath figure method, etc.
- Building blocks are dispersed and suspended in a second solvent (hereinafter a “second solvent”).
- the building blocks can include, but are not limited to, solid particles, polymers, molecules, ions, etc.
- the size of the building blocks can range from atomic to micrometer.
- one of the two solvents is considered as the suspension solvent of the solid particles, and preferably, the solvent with better dispersion of building blocks is selected as the suspension solvent.
- Mechanical vibration or agitation and/or sonication for example, can be used to improve the dispersion of building blocks in the suspension solvent (i.e. , second solvent).
- the second solvent with the suspension of building blocks is then introduced into substrate, as shown in FIG. 1 b. Due to the partially miscible property of the first and second solvents, the first solvent existing in the plurality of recessed regions will be replaced and filled with the suspension solvent, for example, the second solvent, as shown in FIG. 1 c.
- the second solvent can be introduced onto the substrate, for example, by dropping, dipping, and wetting, etc.
- the volume of the second solvent is at least twice the volume of first solvent remaining on the substrate.
- the replacing process occurred in the plurality of recessed regions can be due to the first solvent being diffused into a second solvent phase, and the consumed time for this replacing process can vary from milliseconds (ms) to days (d), which is determined by the solubility of the first and second solvents with each other.
- a relatively large amount of the first solvent in a pure form can be used as a sweeping solvent, which is then introduced onto the substrate to remove the surplus second solvent on the substrate surface.
- the removal of the surplus second solvent on the substrate can lead to the formation of droplets of the second solvent being isolated in each of the plurality of recessed regions by the first solvent, for example, as shown in FIG. 1d.
- the volume of pure first solvent should be at least five times the volume of the second solvent used in Step 3, in order to help ensure that the surplus second solvent is totally removed.
- the relatively large amount of pure first solvent for example, can be introduced by dropping, dipping, washing, etc.
- the droplets of the second solvent formed in the recessed regions will diffuse into the first solvent phase until the droplets of the second solvent disappear.
- the building blocks suspended in droplets of the second solvent are encapsulated and thus assembled in the recessed regions during the diffusion process.
- the time for the droplets of the second solvent to diffuse into the first solvent can be, for example, from milliseconds (ms) to hours (h), which is determined by the solubility of the first solvent and the solvent with each other.
- the amount of the building blocks in each of the plurality of recessed regions can be tunable, for example, by varying the concentration of building blocks suspended in solvent and/or the size of recessed region used as the template.
- the building blocks compacted in the recessed region can be, but not limited to, in a form of spherical structure (FIG. 1e), ellipsoidal structure closely packed by solid particles, colloidosomes, biostructures, crystals, or in a form of irregular placement of solid particles.
- an external stimulus for example, a magnetic or electric fields
- the magnetic field can be used to distort the shape of the supraparticles.
- Example 1 Assembling solid particles into supraparticles within the honeycomb hole-array films based on water/1 -butanol system
- the Laplace pressure inside an emulsion droplet can be determined by the interfacial surface tension of the droplet divided by the radius of the droplet.
- the interfacial surface tension between water and 1-butonal can be considered negligible during the emulsification.
- this negligible surface tension allows for a relatively simple and precise modulation of the emulsion droplets size within the recessed region (e.g., hole) of the template by endowing a minimum external force to the system (e.g., the fluid-shear force induced by sweeping with 1 -butanol).
- the negligible Laplace pressure inside the emulsified droplets keeps the emulsified droplets from coalescing and breaking and without the need for emulsifiers.
- a microfluidic self-assembly which is based on a miniaturized channel chip to manipulate the fluid emulsification, requires relatively complex set-ups, and suffers from relatively low yields and time-consuming operation, and obligates applying high pressure of microflows and narrowing micro-channels to decrease the emulsion droplets size into several micrometers.
- surfactants are needed to help prevent these immiscible emulsion systems from coalescing, which can present potential toxicity to the system if it is intended for biological applications.
- a water/1 -butanol system was employed as the partially miscible solvents.
- the solubility for water in 1 -butanol and 1 -butanol in water are 20.1 wt.% and 7.7 wt.% at 25°C, respectively.
- the honeycomb hole-array films with hexagonally packed structure can be obtained by a breath figure method, in which the size of the quasi-spherical holes at a micrometer scale. Solid particles with spherical shape, for example, at a nanometer scale can be used, and the solid particles are preferably well dispersed in water phase.
- FIGS. 2a-2h illustrate the results of the self-assembly of supraparticles in the honeycomb holearray films based on the water/1 -butanol system.
- FIGS. 2a-2h the supraparticles formed in the holes of the honeycomb hole-array film exhibit a well-ordered spherical structure.
- FIGS. 3a-3h and FIGS. 4a-4e illustrate that the size of the assembled supraparticles can be tuned by varying the concentration of solid particles in a water phase and by varying the hole size in honeycomb hole-array film, respectively.
- FIG. 5 illustrates the self-assembly of supraparticles by using various types and shapes of building blocks, which demonstrates a wide range of versatility.
- FIG. 6 illustrates the results of the self-assembly of supraparticles with size ranging from nanometer to millimeter, which indicates that the disclosed method can be employed to prepare supraparticles at all scales, by directly controlling the size of the templates and the concentration of the building blocks.
- Example 2 Assembling supraparticles under an External Field
- the external stimulus when the building blocks can respond to the external stimulus, such as, but not limited to, magnetic particles that can respond to magnetic field, the external stimulus can be used to tune the shape of the assembled supraparticles within the recessed regions.
- the water/1 -butanol system was selected as the partially miscible solvents, and magnetic nanoparticles (e.g. Fe3O4) dispersed in water phase were used.
- an external magnetic field was vertically applied across the substrate during the entire process. The transition from quasi-spherical to ellipsoidal supraparticles can be achieved by assembling magnetic FesC nanoparticles in an external magnetic field with increasing field strength, as shown in FIG. 7a.
- the elongation of the ellipsoidal supraparticles is driven by the assembly of magnetic nanoparticles into one-dimensional (1 D) chains along the field direction inside the emulsion droplets, with a larger aspect ratio (L/D, length to diameter) in a relatively stronger field (FIG. 7a).
- L/D aspect ratio
- FIG. 7b When released from the template and re-dispersed in 1 -butanol, these ellipsoidal supraparticles remain structurally stable and can be further aligned into a series of 1 D long and head-to-tail chains along the magnetic field, as shown in FIG. 7b.
- FIGS. 8a-8d illustrate tumbler-like supraparticles from a mixture of FesO4 nanoparticles (115 ⁇ 27 nm) and SiO2 nanoparticles (220 ⁇ 16.7 nm) assembled under magnetic field in accordance with one embodiment.
- Example 3 Assembling supraparticles within different templating holes
- the method and system as disclosed is also suitable for various shapes of hole-array films, for example, cylindrical (FIG. 9a), cylindrical-dimer (FIG. 9b), inverted-pyramid (FIG. 9c), and even irregular hole shapes (FIG. 9d).
- similar supraparticles have been successfully assembled in all micro-hole-array films.
- almost all of the supraparticles were preferentially deposited at the inner boundaries of the micro-hole walls to effectively reduce their surface energies.
- the supraparticles were deposited at the bottom tip of the inverted pyramid holes where the lowest potential energy attained (FIG. 9c).
- the results demonstrate an effective strategy for preferentially depositing the supraparticles into targeted positions, which only requires pre-designing the hole-arrays.
- Example 4 Assembling supraparticles from molecular and ionic building-blocks
- biopolymer molecules e.g., chitosan, casein proteins, fish sperm DNA, and live micrococcus cells
- solid particles, biopolymer molecules can also be self-assembled into unique supraparticles employing the same method as disclosed above.
- FIGS. 12a-12c illustrates the growth of “cube-like” micro-crystals of NaCI, “rice-like” micro-crystals of Na2SOs, and “flower-like” micro-crystals of Na2SC>4, representing the cubic, monoclinic, and orthorhombic lattice systems, respectively.
- the ability to deposit the supraparticles at specified locations present a unique property for certain technologies, for example, biosensor functionalization, nanoscale fabrication of protein chips, and cell sorting.
- a transfer process is generally required in other supraparticles self-assembly methods by complicated techniques (e.g., AFM, lithography), which process becomes typically harder with the nanoscale sizes of supraparticles and damage the supraparticles with limited positioning accuracy and yields.
- the disclosed method based on partially-m iscible solvents provides a relatively low-cost and relatively high- throughput method for building uniform supraparticles.
- the disclosed method also guarantees the accurate positioning of the supraparticles inside the predefined spaces without any structural damage.
- this strategy can have significant impacts not only on materials science but also on many other fields such as data storage, bio- and chemical sensing, and biomedicine.
- the SiO2 nanoparticles can be prepared from a modified Stober method.
- synthesis of SiO2 nanoparticles with a size around 220 nm, 0.86 mL of Tetraethyl orthosilicate (TEOS), 28 mL of ethanol, 4.3 mL of water, and 0.65 mL of ammonia (NH4OH, 28%) solution can be mixed. This mixture was reacted for 4 hours at room temperature under magnetic stirring.
- the SiO2 nanoparticles can be collected by centrifugation, washed with water and ethanol several times, and finally re-dispersed in water for further use.
- TEOS Tetraethyl orthosilicate
- NH4OH ammonia
- the FesC nanoparticles can be prepared through a hydrolysis process in diethylene glycol (DEG) solution at high temperature under nitrogen atmosphere protection. Firstly, 50 mmol of NaOH powder was dissolved into 20 mL of DEG by heating at 120°C for 1 h under nitrogen atmosphere to obtain a NaOH/DEG stock solution. This mixture was kept at 70°C for storage.
- DEG diethylene glycol
- FesCU nanoparticles around 115 nm 3 a mixture of poly(acrylic acid) (PAA, 4 mmol), iron chloride (FeCh, 0.4 mmol), and DEG (17 mL) was heated to 220°C for 30 min under vigorous stirring, then 1 .85 mL of the NaOH/DEG stock solution was quickly injected into the hot mixture. After a further reaction at 220°C for 1 hour, FesO4 nanoparticles with a relatively large size were obtained.
- PAA 4 mmol
- FeCh iron chloride
- DEG DEG
- HUA chloroauric acid
- PDDA poly(diallyldimethylammonium) chloride
- HCI hydrochloric acid
- EG Ethylene glycol
- the above mixture containing the Au nanocrystal colloid was naturally cooled into room temperature, and then another volume of HAuCk solution (with a molar ratio of 1 :40 for AuC ions to Au NPs) was added to remove the corner and the sharper edge of the Au nanocrystals.
- the final Au nanoparticle products can be collected by centrifugation, repeatedly rinsed with water three times, and re-dispersed in water for further use.
- the CdTe quantum dots can be prepared with 16 mL of cadmium chloride (CdCl2, 0.04 M), 400 mg of trisodium citrate dihydrate, 400 mg of sodium borohydride (NaBH4), 4 mL of Sodium tellurite (Na2TeOs 0.01 M), 200 mg of Mercaptosuccinic acid (MSA) and 184 mL of water can be mixed in a flask under vigorous stirring. As the above mixture turns to green color, the flask was equipped with a condenser, and the mixture was refluxed under air condition for 5 hours of reaction. The final products can be collected by centrifugation, washed with ethanol and water repeatedly, and re-dispersed in water for further use.
- a mixture of 0.405 g of FeCh 6H2O, 4.05 mg of NaHPC , and 75 mL of water was transferred and sealed in a Teflon autoclave, and then maintained at 105°C for 48 hours. The final products can be collected by centrifugation, rinsed with water, and re-dispersed into the water for further use.
- the Fe2Os nanodiscs can be prepared through an alcohol-thermal reaction as previously reported 10 . Briefly, a mixture of 1 ,09g of FeCh 6H2O, 5 g of sodium acetate, 2.8 mL of water, and 40 mL of ethanol was sealed in a Teflon autoclave, and then maintained at 180°C for 12 hours. The final products can be washed with water, collected by centrifugation, and re-dispersed into the water for further use.
- the honeycomb micro-hole array film was fabricated through a breath figure method.
- the fabrication process for other micro-hole array PS films with different patterns was divided into two steps.
- the first step was to fabricate the micro-hole array silicon (Si) wafers via a conventional photolithography strategy combined with a further etching process.
- Si wafers can be patterned through the photolithography technique and then etched by a deep reactive-ion etching of SFe gas.
- Si wafer with a 300-nm-thick silicon oxide (SiCh) layer was patterned through the photolithography process and then etched via a wet etching process.
- the SiO2 layer was firstly etched by a buffered oxide etchant (BOE) solution for 6 min, and then the exposed silicon was etched by potassium hydroxide solution (6 wt.%) in a water bath at 90°C for 1 hour.
- BOE buffered oxide etchant
- These above Si wafers can be washed by acetone, ethanol, and water several times.
- the second step was designed to replicate them via a PDMS (poly-dimethylsiloxane) soft-lithography strategy. Firstly, these Si wafers can be treated by trimethylchlorosilane (TMCS) vapor for 15 min to avoid the sticking of PDMS mold onto the Si wafers.
- TMCS trimethylchlorosilane
- 5-mm-sized hole-array film and 500-nm-sized hole-array film [0073] The 5 mm-sized hole-array film was prepared by a 3D printer. The printing precursor was acrylonitrile butadiene styrene (ABS). The 500 nm-sized hole-array film was prepared through a modified in-situ polymerization process at the air-water interface. Briefly, a 2D colloidal crystal monolayer (500 nm of PS nanoparticles) was firstly assembled on the surface of the aqueous pyrrole monomer solution (0.8 wt.% in water) via an interfacial self-assembly method.
- ABS acrylonitrile butadiene styrene
- the system was kept undisturbed for 2 hours to allow the pyrrole monomer to swell the PS nanoparticles.
- 200 pL of aqueous FeCh solution (1 M) was then added to the above system to initiate the polymerization coating of the pyrrole monomer on the water-immersed part of the PS nanoparticle monolayer, which was endured for 24 hours at room temperature.
- the polypyrrole film with a topopening nanohole-array was fabricated after removing the PS nanoparticles by tetrahydrofuran (THF).
- THF tetrahydrofuran
- the final product was rinsed with THF and water several times.
- the micro-hole array polypyrrole films with different periodic structures can be obtained by using different sizes of PS nanoparticles.
- the micro-hole array films can be first wetted by 1 -butanol. Then, the aqueous solution containing the building-blocks was drop-casted onto the wetted hole-array films (solubility limit of water in 1 -butanol is 20.4 % w/w at 25°C). After 5 minutes, a large amount of pure 1 -butanol was used to sweep the aqueous solution rapidly. The uniform superstructures can be produced finally within the micro-holes in films.
- the polymer PS film templates can be removed by heating at 450°C for 3 hours in air or etched completely by dissolving the film in chloroform.
Landscapes
- Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Health & Medical Sciences (AREA)
- Inorganic Chemistry (AREA)
- Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (AREA)
- Biochemistry (AREA)
- Genetics & Genomics (AREA)
- Medicinal Chemistry (AREA)
- Zoology (AREA)
- Molecular Biology (AREA)
- General Health & Medical Sciences (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Biotechnology (AREA)
- Toxicology (AREA)
- General Chemical & Material Sciences (AREA)
- Biophysics (AREA)
- Gastroenterology & Hepatology (AREA)
- Proteomics, Peptides & Aminoacids (AREA)
- Wood Science & Technology (AREA)
- Dispersion Chemistry (AREA)
- Bioinformatics & Cheminformatics (AREA)
- Nanotechnology (AREA)
- Tropical Medicine & Parasitology (AREA)
- Virology (AREA)
- Biomedical Technology (AREA)
- Microbiology (AREA)
- Polymers & Plastics (AREA)
- General Engineering & Computer Science (AREA)
- Physical Or Chemical Processes And Apparatus (AREA)
- Colloid Chemistry (AREA)
Abstract
Description
Claims
Priority Applications (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| KR1020237019068A KR20230107607A (en) | 2020-11-12 | 2021-11-12 | Full-scale self-assembly and precise positioning of superparticles |
| CN202180090210.2A CN116802003A (en) | 2020-11-12 | 2021-11-12 | Full-scale self-assembly and precise positioning of superparticles |
| US18/252,558 US12441978B2 (en) | 2020-11-12 | 2021-11-12 | All-scale self-assembly and precise positioning of supraparticles |
| EP21892853.9A EP4244348A4 (en) | 2020-11-12 | 2021-11-12 | SELF-ASSEMBLY AND PRECISE POSITIONING OF SUPRAPARTICLES IN ALL SCALE |
| JP2023528339A JP7840581B2 (en) | 2020-11-12 | 2021-11-12 | Self-organization and precise arrangement of superparticles at all scales. |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202063112678P | 2020-11-12 | 2020-11-12 | |
| US63/112,678 | 2020-11-12 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2022104027A1 true WO2022104027A1 (en) | 2022-05-19 |
Family
ID=81601690
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2021/059097 Ceased WO2022104027A1 (en) | 2020-11-12 | 2021-11-12 | All-scale self-assembly and precise positioning of supraparticles |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US12441978B2 (en) |
| EP (1) | EP4244348A4 (en) |
| JP (1) | JP7840581B2 (en) |
| KR (1) | KR20230107607A (en) |
| CN (1) | CN116802003A (en) |
| WO (1) | WO2022104027A1 (en) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116021025A (en) * | 2022-10-25 | 2023-04-28 | 中国科学院合肥物质科学研究院 | An ordered lattice ultra-smooth pure gold conductive microsphere and its preparation method |
| CN117484934A (en) * | 2023-11-02 | 2024-02-02 | 苏州新维度微纳科技有限公司 | Microsphere template and its preparation method and application |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2025226348A2 (en) * | 2024-03-04 | 2025-10-30 | The Regents Of The University Of California | Method for scaling production of bio-inspired nanomaterials |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2015187833A1 (en) * | 2014-06-03 | 2015-12-10 | University Of Houston | Magnetic directed alignment of stem cell scaffolds for regeneration |
| US9534213B2 (en) * | 2014-03-04 | 2017-01-03 | The Regents Of The University Of Michigan | Spontaneously formed terminal supraparticles having nanoparticles for protein stabilization |
| US20180147594A1 (en) * | 2015-05-28 | 2018-05-31 | Seoul National University R&Db Foundation | Supraparticle atomizing device |
| WO2019067734A1 (en) * | 2017-09-27 | 2019-04-04 | The Regents Of The University Of Michigan | Self-assembly methods for forming hedgehog-shaped particles |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4983369A (en) | 1989-11-22 | 1991-01-08 | Allied-Signal Inc. | Process for forming highly uniform silica spheres |
| US6187214B1 (en) | 1996-05-13 | 2001-02-13 | Universidad De Seville | Method and device for production of components for microfabrication |
| US6265021B1 (en) * | 1998-07-31 | 2001-07-24 | International Business Machines Corporation | Nanoparticle structures utilizing synthetic DNA lattices |
| US7597814B2 (en) * | 2004-03-23 | 2009-10-06 | Hewlett Packard Development Company, L.P. | Structure formed with template having nanoscale features |
| CN107532951A (en) * | 2015-07-15 | 2018-01-02 | 深圳纽迪瑞科技开发有限公司 | Composite and the power sensor film made of composite |
-
2021
- 2021-11-12 JP JP2023528339A patent/JP7840581B2/en active Active
- 2021-11-12 CN CN202180090210.2A patent/CN116802003A/en active Pending
- 2021-11-12 WO PCT/US2021/059097 patent/WO2022104027A1/en not_active Ceased
- 2021-11-12 US US18/252,558 patent/US12441978B2/en active Active
- 2021-11-12 KR KR1020237019068A patent/KR20230107607A/en active Pending
- 2021-11-12 EP EP21892853.9A patent/EP4244348A4/en active Pending
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9534213B2 (en) * | 2014-03-04 | 2017-01-03 | The Regents Of The University Of Michigan | Spontaneously formed terminal supraparticles having nanoparticles for protein stabilization |
| WO2015187833A1 (en) * | 2014-06-03 | 2015-12-10 | University Of Houston | Magnetic directed alignment of stem cell scaffolds for regeneration |
| US20180147594A1 (en) * | 2015-05-28 | 2018-05-31 | Seoul National University R&Db Foundation | Supraparticle atomizing device |
| WO2019067734A1 (en) * | 2017-09-27 | 2019-04-04 | The Regents Of The University Of Michigan | Self-assembly methods for forming hedgehog-shaped particles |
Non-Patent Citations (10)
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116021025A (en) * | 2022-10-25 | 2023-04-28 | 中国科学院合肥物质科学研究院 | An ordered lattice ultra-smooth pure gold conductive microsphere and its preparation method |
| CN117484934A (en) * | 2023-11-02 | 2024-02-02 | 苏州新维度微纳科技有限公司 | Microsphere template and its preparation method and application |
Also Published As
| Publication number | Publication date |
|---|---|
| EP4244348A1 (en) | 2023-09-20 |
| US20240002780A1 (en) | 2024-01-04 |
| KR20230107607A (en) | 2023-07-17 |
| EP4244348A4 (en) | 2024-10-30 |
| JP7840581B2 (en) | 2026-04-06 |
| US12441978B2 (en) | 2025-10-14 |
| JP2023553790A (en) | 2023-12-26 |
| CN116802003A (en) | 2023-09-22 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| Liu et al. | Self-assembly of superstructures at all scales | |
| US12441978B2 (en) | All-scale self-assembly and precise positioning of supraparticles | |
| Li et al. | Colloidal molecules and patchy particles: Complementary concepts, synthesis and self-assembly | |
| Loget et al. | Bulk synthesis of Janus objects and asymmetric patchy particles | |
| Zhang et al. | Breath figure: a nature-inspired preparation method for ordered porous films | |
| Dziomkina et al. | Colloidal crystal assembly on topologically patterned templates | |
| Helgeson et al. | Hydrogel microparticles from lithographic processes: Novel materials for fundamental and applied colloid science | |
| Li et al. | Colloidal assembly: the road from particles to colloidal molecules and crystals | |
| Bunz | Breath figures as a dynamic templating method for polymers and nanomaterials | |
| US9051176B2 (en) | Massively parallel assembly of composite structures using depletion attraction | |
| Wang et al. | Intriguing morphology evolution from noncrosslinked poly (tert-butyl acrylate) seeds with polar functional groups in soap-free emulsion polymerization of styrene | |
| US20110177978A1 (en) | Apparatus and Method for Forming Self-Assembly Arrays | |
| Edmond et al. | Large-scale synthesis of colloidal bowl-shaped particles | |
| Song et al. | Control of orientation, formation of ordered structures, and self-sorting of surface-functionalized microcubes at the air–water interface | |
| KR100837046B1 (en) | Method for forming metal-block copolymer nanocomposites and control method thereof | |
| Shillingford et al. | Top-down heterogeneous colloidal engineering using capillary assembly of liquid particles | |
| Sun et al. | Fabrication of honeycomb-structured porous film from polystyrene via polymeric particle-assisted breath figures method | |
| Shillingford et al. | Assembly and dynamic analysis of square colloidal crystals via templated capillary assembly | |
| Ballard et al. | Hybrid biological spores wrapped in a mesh composed of interpenetrating polymer nanoparticles as “patchy” Pickering stabilizers | |
| Li et al. | Positioning growth of scalable silica nanorods on the interior and exterior surfaces of porous composites | |
| Xiong et al. | Honeycomb structured porous films prepared by the method of breath figure: history and development | |
| JP5041534B2 (en) | A method for manufacturing a honeycomb-shaped porous body. | |
| Zuo et al. | Effect of particle size on the orientation and order of assemblies of functionalized microscale cubes formed at the water/air interface | |
| Cui et al. | Gram-scale fabrication of patchy nanoparticles with tunable spatial topology and chemical functionality | |
| Yang et al. | Exploration of selective decoration of Janus silica particles within polymeric patterned pore arrays |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 21892853 Country of ref document: EP Kind code of ref document: A1 |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 18252558 Country of ref document: US Ref document number: 2023528339 Country of ref document: JP |
|
| ENP | Entry into the national phase |
Ref document number: 20237019068 Country of ref document: KR Kind code of ref document: A |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| ENP | Entry into the national phase |
Ref document number: 2021892853 Country of ref document: EP Effective date: 20230612 |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 202180090210.2 Country of ref document: CN |
|
| WWG | Wipo information: grant in national office |
Ref document number: 18252558 Country of ref document: US |