WO2019208723A1 - ロタキサン化合物 - Google Patents
ロタキサン化合物 Download PDFInfo
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- WO2019208723A1 WO2019208723A1 PCT/JP2019/017761 JP2019017761W WO2019208723A1 WO 2019208723 A1 WO2019208723 A1 WO 2019208723A1 JP 2019017761 W JP2019017761 W JP 2019017761W WO 2019208723 A1 WO2019208723 A1 WO 2019208723A1
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D413/00—Heterocyclic compounds containing two or more hetero rings, at least one ring having nitrogen and oxygen atoms as the only ring hetero atoms
- C07D413/02—Heterocyclic compounds containing two or more hetero rings, at least one ring having nitrogen and oxygen atoms as the only ring hetero atoms containing two hetero rings
- C07D413/12—Heterocyclic compounds containing two or more hetero rings, at least one ring having nitrogen and oxygen atoms as the only ring hetero atoms containing two hetero rings linked by a chain containing hetero atoms as chain links
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07F—ACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
- C07F7/00—Compounds containing elements of Groups 4 or 14 of the Periodic Table
- C07F7/02—Silicon compounds
- C07F7/08—Compounds having one or more C—Si linkages
- C07F7/18—Compounds having one or more C—Si linkages as well as one or more C—O—Si linkages
- C07F7/1804—Compounds having Si-O-C linkages
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D323/00—Heterocyclic compounds containing more than two oxygen atoms as the only ring hetero atoms
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- 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
- C08G83/00—Macromolecular compounds not provided for in groups C08G2/00 - C08G81/00
- C08G83/001—Macromolecular compounds containing organic and inorganic sequences, e.g. organic polymers grafted onto silica
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08K—Use of inorganic or non-macromolecular organic substances as compounding ingredients
- C08K3/00—Use of inorganic substances as compounding ingredients
- C08K3/34—Silicon-containing compounds
- C08K3/36—Silica
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08K—Use of inorganic or non-macromolecular organic substances as compounding ingredients
- C08K5/00—Use of organic ingredients
- C08K5/54—Silicon-containing compounds
- C08K5/541—Silicon-containing compounds containing oxygen
- C08K5/5415—Silicon-containing compounds containing oxygen containing at least one Si—O bond
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08K—Use of inorganic or non-macromolecular organic substances as compounding ingredients
- C08K5/00—Use of organic ingredients
- C08K5/54—Silicon-containing compounds
- C08K5/544—Silicon-containing compounds containing nitrogen
- C08K5/5477—Silicon-containing compounds containing nitrogen containing nitrogen in a heterocyclic ring
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08L—COMPOSITIONS OF MACROMOLECULAR COMPOUNDS
- C08L21/00—Compositions of unspecified rubbers
Definitions
- the present invention relates to a rotaxane compound having a reactive group and functioning as a silane coupling agent.
- Silane coupling agent is a general term for drugs that have both functional groups reactively bonded to organic materials and functional groups reactively bonded to inorganic materials in the molecule, and the purpose is to combine fillers and polymers that are incompatible with organic substances. It is to bond and to improve the adhesion.
- the silane coupling agent has one functional group that reacts with silanol on the filler surface to reduce the interaction between the fillers due to silanol and improves dispersibility, and the other silane coupling agent that reacts with the polymer.
- the filler and the polymer are bonded via the filler, and the interface structure of the filler changes. As a result, viscosity, storage elastic modulus, loss tangent, etc. are lowered, and dispersibility, mechanical strength, wear resistance, etc. are improved.
- a rotaxane is a supramolecular compound in which a chain molecule that is a shaft component and a cyclic molecule that is a ring component are connected by a spatial bond without a covalent bond, and each component of each is composed of a bond length and a bond angle. Because of its high degree of freedom and mobility, it exhibits unique dynamic characteristics and physical properties.
- RCP is a general term for cross-linked polymers having a rotaxane structure at a cross-linking point, and has been reported to exhibit high flexibility and elasticity due to the structure of the movable cross-linking point (Non-Patent Documents 1 to 3). ).
- RCPs are cross-linked polyrotaxane cyclic molecules including a large number of cyclic molecules, and there are limitations on their versatility and usage.
- An object of the present invention is to provide a rotaxane compound that functions as a silane coupling agent.
- the present inventors have found that a novel rotaxane compound in which a functional group capable of reacting with silica and a functional group capable of reacting with a carbon-carbon unsaturated bond are introduced into the cyclic molecule and the axial molecule of the rotaxane compound, respectively.
- the present invention has been completed by finding that it can be a useful silane coupling agent that imparts unique dynamic properties and physical properties to the composition.
- the present invention provides [1] an axial molecule having one or more cyclic molecules and an axial molecule penetrating through the inner pore of the cyclic molecule, the cap molecule being arranged so that the cyclic molecule is not detached.
- a rotaxane compound comprising: one of a cyclic molecule and an axial molecule having one of a functional group capable of reacting with silica and a functional group capable of reacting with a carbon-carbon unsaturated bond; and A rotaxane compound having a functional group capable of reacting with silica and a functional group capable of reacting with a carbon-carbon unsaturated bond on the other of the cyclic molecule and the axial molecule; [2] The rotaxane compound according to [1], wherein the cyclic molecule is at least one selected from the group consisting of crown ether, cyclodextrin, cyclophane, calixarene, cucurbituril, and pillararene.
- the cyclic molecule is represented by the following formula (1a), (1b), or (1c): [Wherein W 4 is a single bond or a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S—, —CS— , —NH—, —NR 1 — (wherein R 1 represents an alkyl group having 1 to 6 carbon atoms), a benzene ring, a heteroaromatic ring, a saturated or partially unsaturated hydrocarbon ring, and saturated or Represents a spacer composed of 1 to 100 atoms having a structural unit selected from the group consisting of partially unsaturated heterocycles; R 3 is a functional group capable of reacting with silica, or a carbon-carbon unsaturated bond Wherein the cyclic molecule may be substituted with 1 to 4 groups of the same or different types selected from the group consisting of halogen, alkyl, and alkoxy; 1-3
- the axial molecule is represented by the following formula (3): [Wherein, B 1 and B 2 are the same or different and each represents a cap structure; W 1 and W 2 are the same or different and represent a single bond or a linear or branched alkylene chain, —CO— O—, —O—CO—, —O—, —CO—, —S—, —CS—, —NH—, —NR 1 — (wherein R 1 represents an alkyl group having 1 to 6 carbon atoms) Benzene ring, heteroaromatic ring, saturated or partially unsaturated hydrocarbon ring, and 1 to 100 atoms having a structural unit selected from the group consisting of saturated or partially unsaturated heterocycle Wherein at least one of B 1 and B 2 is —W 3 —R 2 (wherein W 3 is a single bond or a linear or branched alkylene chain, —CO—O -, -O-CO
- the functional group capable of reacting with the carbon-carbon unsaturated bond is nitrile oxide, azide, nitrone, nitrileimine, sydnone, methylolphenol, mercapto, sulfide, vinyl, vinylene, ethynyl, ethynylene, cyano, isocyanate, isocyanate.
- a polymer composition comprising a polymer having a carbon-carbon unsaturated bond and the rotaxane compound according to any one of [1] to [7], [9]
- a rotaxane compound that functions as a silane coupling agent is provided.
- a polymer composition containing the rotaxane compound can be realized.
- the “compound” is interpreted as a free form, a salt, a solvate, or an ion, and the form is based on common general technical knowledge. Can be interpreted.
- the anion constituting the salt include perchlorate ion, trifluoromethanesulfonate ion, hexafluorophosphate ion, trifluoroacetate ion, and tetrafluoroborate ion.
- rubber means a raw rubber that can be modified to be essentially insoluble (but swellable) into a boiling solvent such as benzene, methyl ethyl ketone, ethanol / toluene azeotrope, or the like. It means an elastomeric material that has been refined.
- rubber compound means a compound which is a main component constituting rubber.
- examples of the rubber compound include rubber hydrocarbons such as cis-1,4-polyisoprene.
- the rotaxane compound according to the present embodiment is a molecule in which a cyclic molecule and an axial molecule are connected by a spatial bond without a covalent bond, as those skilled in the art normally understand about a rotaxane.
- the rotaxane compound according to the present embodiment is an axis having one or more cyclic molecules and an axial molecule penetrating the inner pore portion of the cyclic molecule, the cap structure being arranged so that the cyclic molecules are not detached.
- the other of the molecules is characterized by having the other of a functional group capable of reacting with silica and a functional group capable of reacting with a carbon-carbon unsaturated bond.
- the rotaxane compound according to this embodiment may have at least one asymmetric carbon atom. Therefore, the rotaxane compound according to this embodiment includes not only the racemic form but also optically active forms of these compounds. Furthermore, when the rotaxane compound according to this embodiment has two or more asymmetric carbon atoms, stereoisomerism may occur. Therefore, the rotaxane compound according to this embodiment includes stereoisomers of these compounds, mixtures thereof, and isolated compounds.
- the rotaxane compound according to this embodiment may exist as a tautomer. Therefore, the rotaxane compound according to this embodiment includes tautomers of the compound.
- the deuterium converter obtained by converting any one or two or more 1 H of the rotaxane compound according to this embodiment into 2 H (D) is also included in the rotaxane compound according to this embodiment.
- the rotaxane compound according to this embodiment has, in its configuration, a functional group capable of reacting with silica and a functional group capable of reacting with a carbon-carbon unsaturated bond.
- these functional groups are sometimes simply referred to as “reactive groups”.
- Examples of the functional group capable of reacting with silica include alkoxysilyl, acetoxysilyl, and chlorosilyl. From the viewpoint of availability and ease of handling, alkoxysilyl is preferred.
- alkoxysilyl include trimethoxysilyl, triethoxysilyl, triisopropoxysilyl, dimethoxymethylsilyl, diethoxymethylsilyl, dimethylmethoxysilyl, dimethylethoxysilyl and the like.
- acetoxysilyl examples include triacetoxysilyl, diacetoxymethylsilyl, acetoxydimethylsilyl, and the like.
- chlorosilyl examples include chlorodimethylsilyl, dichloromethylsilyl, trichlorosilyl and the like.
- Examples of functional groups capable of reacting with a carbon-carbon unsaturated bond include functional groups capable of 1,3-dipolar cycloaddition reactions such as nitrile oxide, azide, nitrone, nitrile imine, sydnone, methylolphenol, Examples include mercapto, sulfide, vinyl, vinylene, ethynyl, ethynylene, cyano, isocyanate, isocyanurate, epoxy, glycyloxy, acryloyl, methacryloyl, and ureido.
- nitrile oxides are easy to handle and include not only ethynylene (carbon-carbon triple bond) but also relatively reactive inert vinylene (carbon-carbon double bond) and nitrile often contained in general-purpose polymers.
- the 1,3-dipolar cycloaddition reaction can be performed without a catalyst and without a solvent, and can be used for both electron-rich and electron-deficient unsaturated bonds. It is preferably used.
- the sulfide includes polysulfides such as disulfide and tetrasulfide (hereinafter, these may be collectively referred to as “(poly) sulfide”).
- the rotaxane compound according to the present embodiment contains one or more cyclic molecules as its constituent molecules. From the viewpoint of ease of synthesis, a rotaxane compound having one axial molecule penetrating through 1 to 3 cyclic molecules (that is, a rotaxane compound including 1 to 3 cyclic molecules) is preferable. Furthermore, as a basic unit of rotaxane, from the viewpoint of precisely controlling the properties of a material having a rotaxane structure as a cross-linking point, a rotaxane compound in which one molecule of an axial molecule penetrates one molecule of a cyclic molecule (that is, [2 Rotaxane) is particularly preferred.
- cyclic molecule examples include, for example, crown ether, cyclodextrin, cyclophane, calixarene, cucurbituril, pillar arene and the like.
- crown ethers are preferable from the viewpoints of availability, convenience, and reactivity, such as inclusion of the number determined in the rotaxane synthesis.
- the ring size of the cyclic molecule is preferably 21 to 42 members, more preferably 21 to 30 members, and particularly preferably 24 members.
- the cyclic molecule may have one or more substituents.
- substituents include, for example, alkylthio, mercapto, aminomethyl, amino, hydroxyl, hydroxymethyl, carboxyl, carboxymethyl, halogen, alkoxy, alkoxycarbonylamino (carbamate), carbamoyl, vinyl, allyl, ethynyl, formyl, Examples include acrylate, methacrylate, ether and the like.
- Specific examples of the ether include, for example, a polyether which may have one or more substituents selected from the group consisting of a phenyl group and an oxo group.
- the above substituents may be directly substituted on the atoms constituting the ring of the cyclic molecule, or may be bonded via a spacer extending from the atoms constituting the ring.
- the spacer is, for example, an alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S—, —CS—, —NH—, —NR 1 — (wherein R 1 Represents a substituent such as an alkyl group.),
- R 1 represents a substituent such as an alkyl group.
- the cyclic molecule has one or more —W 4 —R 3 (W 4 is a single bond or a linear or branched alkylene chain, —CO—O—, —O—CO—, —O —, —CO—, —S—, —CS—, —NH—, —NR 1 — (wherein R 1 represents an alkyl group having 1 to 6 carbon atoms), a benzene ring, a heteroaromatic ring, Represents a spacer composed of 1 to 100 atoms having a structural unit selected from the group consisting of a saturated or partially unsaturated hydrocarbon ring and a saturated or partially unsaturated heterocycle; R 3 represents silica and It is preferably substituted with a group represented by a functional group capable of reacting or a functional group capable of reacting with a carbon-carbon unsaturated bond.
- the cyclic molecule may be further substituted with 1 to 4 groups of the same or different types selected from the group consisting of hal
- Preferred examples of the cyclic molecule include one of a functional group capable of reacting with silica and a functional group capable of reacting with a carbon-carbon unsaturated bond, and having one or more of the above-described substituents.
- each R is the same or different and represents a hydrogen atom or a substituent or a reactive group optionally via a spacer; n is an integer of 2 to 9 (preferably an integer of 2 to 5) 1 to 3 of the ring-constituting oxygen atoms may be replaced by NH or S; and two Rs that substitute for adjacent carbon atoms together with the carbon atom to which they are attached
- An aromatic ring preferably a benzene ring
- a heteroaromatic ring a saturated or partially unsaturated hydrocarbon ring, or a saturated or partially unsaturated heterocyclic ring
- It is a cyclic molecule.
- substituents include, for example, alkylthio, mercapto, aminomethyl, amino, hydroxyl, hydroxymethyl, carboxyl, carboxymethyl, halogen, alkoxy, alkoxycarbonylamino (carbamate), carbamoyl, vinyl, allyl, ethynyl, Examples include formyl, acrylate, methacrylate, ether and the like.
- ether include, for example, a polyether which may have one or more substituents selected from the group consisting of a phenyl group and an oxo group.
- the spacer includes, for example, a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S—, —CS—, —NH—, NR 1 — (wherein R 1 represents a substituent such as an alkyl group), an aromatic ring, a heteroaromatic ring, a saturated or partially unsaturated hydrocarbon ring, and a saturated or partially unsaturated heterocycle Or a structural unit selected from the group consisting of and the like.
- crown ethers include, for example, dibenzo-24-crown-8, 24-crown-8, benzo-24-crown-8, bis (binaphthyl), each of which may have one or more substituents. ) -28-crown-8, bis (biphenyl) -28-crown-8, dicyclohexyl-24-crown-8, and benzo / binaphthyl-24-crown-8.
- dibenzo-24-crown-8, 24-crown-8, benzo-24-crown-8, and dicyclohexyl-24-crown-8, each of which may have one or more substituents are preferable. More preferred is dibenzo-24-crown-8 which may have one or more substituents.
- the reactive group may be directly substituted on the atoms constituting the ring of the cyclic molecule, or may be bonded via the above spacer extending from the atoms constituting the ring.
- a more preferred embodiment of the cyclic molecule is the following formula (1a), (1b), or (1c): [Wherein W 4 is a single bond or a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S—, —CS— , —NH—, —NR 1 — (wherein R 1 represents an alkyl group having 1 to 6 carbon atoms), a benzene ring, a heteroaromatic ring, a saturated or partially unsaturated hydrocarbon ring, and saturated or Represents a spacer composed of 1 to 100 atoms having a structural unit selected from the group consisting of partially unsaturated heterocycles; R 3 is a functional group capable of reacting with silica, or a carbon-carbon unsaturated bond Wherein the cyclic molecule may be substituted with 1 to 4 groups of the same or different types selected from the group consisting of halogen, alkyl, and alkoxy;
- W 4 is a single bond or a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S—, —NH—, benzene ring A group consisting of a 5- or 6-membered nitrogen-containing heteroaromatic ring, a 5- or 6-membered saturated or partially unsaturated hydrocarbon ring, and a 5- or 6-membered saturated or partially unsaturated nitrogen-containing heterocycle A spacer composed of 1 to 100 atoms having a structural unit selected from the above is preferred; a linear alkylene chain, —CO—O—, —O—CO—, —O—, —S—, benzene More preferred is a spacer composed of 1 to 80 atoms having a ring and a structural unit selected from the group consisting of a 5-membered or 6-membered saturated or partially unsaturated nitrogen-containing heterocycle.
- halogen alkyl having 1 to 6 carbons, and alkoxy having 1 to 6 carbons are preferable; fluorine and methyl are more preferable.
- alkoxysilyl As the functional group capable of reacting with silica, alkoxysilyl, acetoxysilyl, and chlorosilyl are preferable; alkoxysilyl is more preferable.
- Functional groups capable of reacting with the carbon-carbon unsaturated bond include nitrile oxide, azide, nitrone, nitrile imine, sydnone, methylolphenol, mercapto, (poly) sulfide, vinyl, vinylene, ethynyl, ethynylene, cyano, isocyanate, isocyanate.
- Nurate, epoxy, glycyloxy, acryloyl, methacryloyl, and ureido are preferred; nitrile oxide, azide, mercapto, (poly) sulfide, epoxy, and glycyloxy are more preferred; nitrile oxide, mercapto, and (poly) sulfide are more preferred.
- the cyclic molecules may be the same or different.
- the rotaxane compound according to the present embodiment contains an axial molecule as its constituent molecule.
- the axial molecule has a bulky group with an outer diameter larger than the inner diameter of the cyclic molecule, ie a cap structure.
- the position of the cap structure is not particularly limited as long as the axial molecule is not detached from the cyclic molecule, and may be present at the end of the axial molecule or in the middle of the axial molecule.
- the cap structure is not particularly limited as long as it is a group that is bulky enough to prevent elimination of the chain molecule from the cyclic molecule.
- each monocyclic or polycyclic aromatic ring may be substituted.
- the monocyclic group having a substituent can be a monocyclic ring having one or more bulky substituents such as a tert-butyl group.
- the bulky group include phenyl optionally substituted with one or more alkyl having 1 to 6 carbon atoms (for example, 3,5-di-tert-butylphenyl, 3,5-dimethylphenyl). 2,6-dimethylphenyl, 3,5-dinitrophenyl, 4-tert-butylphenyl, 2,4,6-trimethylphenyl), tert-butyl, diphenylmethyl, trityl, naphthyl, anthracenyl and the like.
- alkyl having 1 to 6 carbon atoms for example, 3,5-di-tert-butylphenyl, 3,5-dimethylphenyl. 2,6-dimethylphenyl, 3,5-dinitrophenyl, 4-tert-butylphenyl, 2,4,6-trimethylphenyl), tert-butyl, diphenylmethyl, trityl, naphthyl, anthracenyl and the like.
- the chain length of the linker linking the cap structure in the axial molecule is not particularly limited as long as the mobility of the rotaxane compound described above is not lost.
- the main chain has 1 to 500, preferably 5 to 200 main chains. More preferably, it can be composed of 10 to 100 atoms.
- the linker may have a substituent as long as the mobility of the rotaxane compound described above is not lost.
- substituents include, for example, alkylthio, mercapto, aminomethyl, amino, hydroxyl, hydroxymethyl, carboxyl, carboxymethyl, halogen, alkoxy, alkoxycarbonylamino (carbamate), carbamoyl, vinyl, allyl, ethynyl, formyl, Examples include acrylate, methacrylate, ether and the like.
- ether include, for example, a polyether which may have one or more substituents selected from the group consisting of a phenyl group and an oxo group.
- the linker may be composed of, for example, a polymer such as polyester, polyether, polyacrylate, or polycarbonate, or a polymer based on these.
- the linker can have one or more ammonium moieties (preferably secondary ammonium (—N + H 2 —) moieties).
- the part retains the positional relationship in which the raw material of the chain molecule passes through the main ring of the cyclic molecule by electrostatic interaction with the oxygen atom of the cyclic molecule during the production of the rotaxane compound. Can contribute.
- a linker obtained by converting one or more ammonium moieties into tertiary ammonium, amide, urea, carbamate, or the like is also preferred.
- the linker has, for example, one or more ammonium moieties and is a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S. —, —CS—, —NH—, —NR 1 — (wherein R 1 represents a substituent such as an alkyl group), aromatic ring, heteroaromatic ring, saturated or partially unsaturated hydrocarbon ring And a structural unit selected from the group consisting of a saturated or partially unsaturated heterocycle and the like.
- the hydrogen atom of the ammonium moiety is alkyl, alkylcarbonyl, alkylaminocarbonyl, alkoxycarbonyl, optionally substituted phenylcarbonyl, optionally substituted phenylaminocarbonyl, or optionally substituted phenoxycarbonyl. Etc. may be substituted.
- the rotaxane compound is a counter anion (eg, perchlorate ion, trifluoromethanesulfonate ion, hexafluorophosphate ion, trifluoroacetate ion, and tetrafluoroborate). Ions) and the like.
- the reactive group may be directly substituted on an atom constituting the linker or cap structure, or may be bonded via the above-mentioned spacer extending from the atom constituting the linker or cap structure.
- a more preferred embodiment of the axial molecule is the following formula (3): [Wherein, B 1 and B 2 are the same or different and each represents a cap structure; W 1 and W 2 are the same or different and represent a single bond or a linear or branched alkylene chain, —CO— O—, —O—CO—, —O—, —CO—, —S—, —CS—, —NH—, —NR 1 — (wherein R 1 represents an alkyl group having 1 to 6 carbon atoms) Benzene ring, heteroaromatic ring, saturated or partially unsaturated hydrocarbon ring, and 1 to 100 atoms having a structural unit selected from the group consisting of saturated or partially unsaturated heterocycle Wherein at least one of B 1 and B 2 (preferably one of them) is —W 3 —R 2 (wherein W 3 is a single bond, linear or branched) Alkylene chain of -CO-O-, -O-CO-, -O-, -CO
- B 1 and B 2 may be the same or different and are 3,5-di-tert-butylphenyl, 3,5-dimethylphenyl, 2,6-dimethylphenyl, 3,5-dinitrophenyl, 4-tert-butyl.
- Phenyl, 2,4,6-trimethylphenyl, tert-butyl, diphenylmethyl, trityl, naphthyl and anthracenyl are preferred; 3,5-di-tert-butylphenyl, 3,5-dimethylphenyl, 4-tert-butyl More preferred are phenyl, 2,4,6-trimethylphenyl, tert-butyl, and diphenylmethyl.
- W 1 , W 2 , and W 3 are the same or different and each represents a single bond or a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO -, -S-, -NH-, a benzene ring, a 5- or 6-membered nitrogen-containing heteroaromatic ring, a 5- or 6-membered saturated or partially unsaturated hydrocarbon ring, and a 5- or 6-membered saturated ring
- a spacer composed of 1 to 100 atoms having a structural unit selected from the group consisting of partially unsaturated nitrogen-containing heterocycles is preferred; a linear alkylene chain, —CO—O—, —O— Consists of 1 to 80 atoms having a structural unit selected from the group consisting of CO-, -O-, -S-, a benzene ring, and a 5- or 6-membered saturated or partially unsaturated nitrogen-containing heterocycle More preferred are
- the group which may be substituted with B 1 and B 2 is preferably halogen, alkyl having 1 to 6 carbons and alkoxy having 1 to 6 carbons; more preferably fluorine and methyl.
- Examples of the group that may be substituted for the hydrogen atom of the secondary ammonium (—N + H 2 —) moiety include alkyl having 1 to 6 carbon atoms, alkylcarbonyl having 1 to 6 carbon atoms, and alkyl having 1 to 6 carbon atoms.
- alkoxysilyl As the functional group capable of reacting with silica, alkoxysilyl, acetoxysilyl, and chlorosilyl are preferable; alkoxysilyl is more preferable.
- Functional groups capable of reacting with the carbon-carbon unsaturated bond include nitrile oxide, azide, nitrone, nitrile imine, sydnone, methylolphenol, mercapto, (poly) sulfide, vinyl, vinylene, ethynyl, ethynylene, cyano, isocyanate, isocyanate.
- Nurate, epoxy, glycyloxy, acryloyl, methacryloyl, and ureido are preferred; nitrile oxide, azide, mercapto, (poly) sulfide, epoxy, and glycyloxy are more preferred; nitrile oxide, mercapto, and (poly) sulfide are more preferred.
- the axial molecule is substituted with a functional group capable of reacting with a carbon-carbon unsaturated bond. That is, when R 3 is a functional group capable of reacting with silica, R 2 is a functional group capable of reacting with a carbon-carbon unsaturated bond.
- the axial molecule is substituted with a functional group capable of reacting with silica. That is, when R 3 is a functional group capable of reacting with a carbon-carbon unsaturated bond, R 2 is a functional group capable of reacting with silica.
- ring A represents a crown ether cyclic molecule in which 1 to 3 of the ring oxygen atoms may be replaced by NH or S; each R is the same or different and represents a hydrogen atom or Represents a substituent or a reactive group optionally via a spacer; two Rs substituted on adjacent carbon atoms, together with the carbon atom to which they are bonded, form an aromatic ring (preferably a benzene ring) , A heteroaromatic ring, a saturated or partially unsaturated hydrocarbon ring, or a saturated or partially unsaturated heterocyclic ring; n is an integer of 2 to 9 (preferably an integer of 2 to 5) M represents a repeating number of 1 or 2 or more; the axial molecule B has m secondary ammonium (—N + H 2 —) moieties; and B 1 and B 2 are the same or different and each represents a
- X - include specific examples of the counter anion represented by, for example, perchlorate ion, trifluoromethanesulfonate ion, hexafluorophosphate ion, trifluoroacetate ion, and tetrafluoroborate, and the like.
- substituents include, for example, alkylthio, mercapto, aminomethyl, amino, hydroxyl, hydroxymethyl, carboxyl, carboxymethyl, halogen, alkoxy, alkoxycarbonylamino (carbamate), carbamoyl, vinyl, allyl, ethynyl, Examples include formyl, acrylate, methacrylate, ether and the like.
- ether include, for example, a polyether which may have one or more substituents selected from the group consisting of a phenyl group and an oxo group.
- the spacer includes, for example, a linear or branched alkylene chain, —CO—O—, —O—CO—, —O—, —CO—, —S—, —CS—, —NH—, NR 1 — (wherein R 1 represents a substituent such as an alkyl group), an aromatic ring, a heteroaromatic ring, a saturated or partially unsaturated hydrocarbon ring, and a saturated or partially unsaturated heterocycle Or a structural unit selected from the group consisting of and the like.
- a compound obtained by converting one or more secondary ammonium (—N + H 2 —) moieties of the compound represented by the formula (2) into tertiary ammonium, amide, urea, carbamate, or the like is also preferable.
- one molecule of the shaft molecule penetrates one molecule of the crown ether cyclic molecule, and the following formula (2a), (2b), or (2c):
- B 1 , B 2 , W 1 , W 2 , W 3 , W 4 , R 1 , R 2 , R 3 , X ⁇ are the same as defined above; May be substituted with 1 to 4 groups of the same or different species selected from the group consisting of halogen, alkyl, and alkoxy; 1 to 3 of the ring oxygen atoms are attached to NH or S B 1 and B 2 may be substituted with 1 to 4 groups of the same or different types selected from the group consisting of halogen, alkyl, and alkoxy; secondary ammonium (— N + H 2 - hydrogen atoms) section, alkyl, alkylcarbonyl, alkylaminocarbonyl, alkoxycarbonyl, phenyl carbony
- the axial molecule is substituted with a functional group capable of reacting with a carbon-carbon unsaturated bond. That is, when R 3 is a functional group capable of reacting with silica, R 2 is a functional group capable of reacting with a carbon-carbon unsaturated bond.
- the axial molecule is substituted with a functional group capable of reacting with silica. That is, when R 3 is a functional group capable of reacting with a carbon-carbon unsaturated bond, R 2 is a functional group capable of reacting with silica.
- the rotaxane compound according to the present embodiment is obtained by a known method such as the Threading-Capping method, a method described in the literature (for example, Oreoscience Vol. 5, No. 5, 2005, p. 209) or a method according thereto. Can be manufactured.
- Nitrile oxide which is a functional group capable of reacting with a carbon-carbon unsaturated bond
- Nitrile oxide can be easily obtained by, for example, reacting a nitroalkane compound synthesized according to a known method with phenyl isocyanate or the like in the presence of a base. Can be introduced.
- functional groups capable of reacting with a carbon-carbon unsaturated bond other than the nitrile oxide according to the present embodiment can be introduced according to a known method.
- the mercapto group and (poly) sulfide group which are functional groups capable of reacting with a carbon-carbon unsaturated bond, can be introduced, for example, starting from an alkenyl group introduced into a cyclic molecule or a shaft molecule.
- a mercapto group and a (poly) sulfide group can be introduced into a cyclic molecule or an axial molecule by adding an alkylthiol or an alkyldithiol to an alkenyl group introduced into the cyclic molecule or the axial molecule.
- silyl groups such as alkoxysilyl which is a functional group capable of reacting with silica can be introduced, for example, starting from an alkenyl group introduced into a cyclic molecule or a shaft molecule.
- 1,3-dipolar cycloaddition of a nitrile oxide compound having various silyl groups to an alkenyl group introduced into the cyclic molecule or axial molecule allows various silyl groups to be added to the cyclic molecule or axial molecule.
- the rotaxane compound and its intermediate according to the present embodiment are subjected to purification methods commonly used in organic synthetic chemistry, such as neutralization, filtration, extraction, washing, drying, concentration, recrystallization, various chromatography, and the like. It can be separated and purified. In addition, each intermediate can be subjected to the next reaction without any particular purification.
- the optically active substance of the rotaxane compound according to this embodiment can be produced by using optically active starting materials and intermediates, or by optical resolution of the final racemate.
- Examples of the optical resolution method include a physical separation method using an optically active column and a chemical separation method such as a fractional crystallization method.
- the diastereomer of the rotaxane compound according to this embodiment is produced, for example, by a fractional crystallization method.
- a polymer composition can be produced using the rotaxane compound according to this embodiment as a silane coupling agent.
- a polymer composition containing the rotaxane compound can be expected to improve stretchability, stress relaxation, wear resistance, and the like.
- the loss tangent (tan ⁇ ) and complex elastic modulus of the vulcanized rubber composition can be measured with a commercially available viscoelastic spectrometer.
- the tensile properties of vulcanized rubber and thermoplastic rubber can be measured according to JIS K 6251.
- the stress relaxation test of the vulcanized rubber can be performed according to JIS K 6263.
- polymer composition examples include, for example, tire materials, optical materials, medical materials, biomaterials, contact lenses, coating agents, and adhesives; and environment-related materials, daily necessities, civil engineering and building materials, battery-related materials Food, health goods, sporting goods and materials thereof, clothing / fashion materials, textiles, toys / entertainment materials, art-related materials, automobile-related materials, and the like.
- a polymer having an unsaturated bond is preferably used as the polymer contained in the polymer composition according to this embodiment.
- the polymer having an unsaturated bond is a polymer having a reactive multiple bond that can undergo an addition reaction such as a 1,3-dipolar cycloaddition reaction, a radical addition reaction, an electrophilic addition reaction, a nucleophilic addition reaction, or the like.
- acrylonitrile-butadiene copolymer polyisoprene, styrene-butadiene copolymer, polybutadiene, polychloroprene, ethylene-propylene-diene copolymer, styrene-butadiene-styrene block copolymer, styrene- Examples include isoprene-styrene block copolymers.
- the polymer is a rubber compound
- a PAN polyacrylonitrile
- C ⁇ N nitrile group
- C ⁇ C carbon-carbon double bond
- a diene compound which is a compound; an EPDM (ethylene-propylene-diene copolymer rubber) compound; a polynorbornene compound; and an NBR (nitrile rubber) compound which is a compound having a nitrile group and a carbon-carbon double bond in the molecule.
- EPDM ethylene-propylene-diene copolymer rubber
- NBR nitrile rubber
- diene rubber examples include isoprene rubber including natural rubber (NR) and polyisoprene rubber (IR), butadiene rubber (BR), styrene-butadiene copolymer rubber (SBR), and styrene-isoprene-butadiene copolymer rubber. (SIBR), chloroprene rubber (CR) and the like.
- NR natural rubber
- IR polyisoprene rubber
- BR butadiene rubber
- SBR styrene-butadiene copolymer rubber
- SIBR chloroprene rubber
- CR chloroprene rubber
- the content in the rubber component in the case of containing NR is, for example, 1 to 100% by mass, 5 to 95% by mass, 10 to 90% by mass, 1 to 20% by mass, 5 to 30% by mass, 10 to 40% by mass. 20 to 50% by mass, 30 to 60% by mass, 40 to 70% by mass, 50 to 80% by mass, 60 to 90% by mass, 70 to 100% by mass, or 80 to 100% by mass.
- the content of the rubber component in the case of containing BR is, for example, 1 to 100% by mass, 5 to 95% by mass, 10 to 90% by mass, 1 to 20% by mass, 5 to 30% by mass, 10 to 40% by mass. 20 to 50% by mass, 30 to 60% by mass, 40 to 70% by mass, 50 to 80% by mass, 60 to 90% by mass, 70 to 100% by mass, or 80 to 100% by mass.
- the content in the rubber component in the case of containing SBR is, for example, 1 to 100% by mass, 5 to 95% by mass, 10 to 90% by mass, 1 to 20% by mass, 5 to 30% by mass, 10 to 40% by mass. 20 to 50% by mass, 30 to 60% by mass, 40 to 70% by mass, 50 to 80% by mass, 60 to 90% by mass, 70 to 100% by mass, or 80 to 100% by mass.
- Examples of rubber applications include tires, hoses, belts, packing, electric wire coatings, anti-vibration rubbers, rubbers for construction, rollers, footwear, seal parts, medical materials, automobile-related parts, daily necessities, sporting goods, batteries, etc. .
- polymer is a water-soluble polymer
- examples when the polymer is a water-soluble polymer include, for example, starch, gelatin, carboxymethyl cellulose, methyl cellulose, polyamine, polyvinyl alcohol, polyacrylic acid, polyacrylamide, polyethylene oxide, polyvinyl pyrrolidone, polyvinyl amide, and polypeptide. Can be mentioned.
- water-soluble polymer examples include, for example, pharmaceuticals, medical materials, cosmetics, toiletries, foods, paints, adhesives, inks, civil engineering buildings, water treatment such as wastewater treatment, electronics, batteries, and the like.
- the use amount of the rotaxane compound according to this embodiment is, for example, 0.01 to 20 parts by weight, 0.01 to 10 parts by weight, 0.05 to 10 parts by weight, with respect to 100 parts by weight of the polymer having an unsaturated bond.
- examples include a range of 0.05 to 5 parts by mass, 0.1 to 10 parts by weight, or 0.2 to 5 parts by weight.
- silica is suitably used as the filler contained in the polymer composition according to the present embodiment.
- the silica is not particularly limited, and for example, silica prepared by a dry method (anhydrous silica), silica prepared by a wet method (hydrous silica), and the like can be used. Of these, hydrous silica prepared by a wet method is preferred because of its large number of silanol groups. Silica may be used alone or in combination of two or more.
- the content relative to 100 parts by weight of the rubber component is, for example, in the range of 1 to 150 parts by weight, 5 to 130 parts by weight, 10 to 100 parts by weight, 5 to 50 parts by weight, or 30 to 80 parts by weight. Can be mentioned.
- filler In addition to silica, other fillers may be used. Such filler is not particularly limited, and examples thereof include carbon black, aluminum hydroxide, alumina (aluminum oxide), calcium carbonate, talc, and clay. Carbon black is preferably used from the viewpoint of reinforcing properties. It is done. These fillers may be used alone or in combination of two or more.
- those generally used for rubber can be appropriately used.
- N110, N115, N120, N125, N134, N135, N219, N220, N231, N234, N293, N299, N326, N330, N339, N343, N347, N351, N356, N358, N375, N539, N550, N582, N630, N642, N650, N660, N683, N754, N762, N765, N772, N774, N787, N907, N908, N990, N991, etc. can be suitably used.
- the content relative to 100 parts by weight of the rubber component is, for example, in the range of 1 to 150 parts by weight, 5 to 130 parts by weight, 10 to 100 parts by weight, 5 to 50 parts by weight, or 30 to 80 parts by weight. Is mentioned.
- the content of the whole filler with respect to 100 parts by mass of the rubber component is, for example, in the range of 1 to 200 parts by mass, 5 to 150 parts by mass, 10 to 100 parts by mass, 5 to 50 parts by mass, or 30 to 80 parts by mass.
- the polymer composition according to this embodiment is a rubber composition for tires
- compounding agents and additives conventionally used in the tire industry such as waxes, oils, and anti-aging agents , Stearic acid, zinc oxide, vulcanizing agent, vulcanization accelerator and the like can be appropriately contained as required.
- the content relative to 100 parts by mass of the rubber component is, for example, in the range of 0.5 to 10 parts by mass, 0.5 to 5 parts by mass, or 1 to 3 parts by mass.
- the content with respect to 100 parts by mass of the rubber component is, for example, in the range of 5 to 100 parts by mass, 10 to 70 parts by mass, or 10 to 50 parts by mass.
- the anti-aging agent is not particularly limited, and those used in the rubber field can be used. Examples thereof include quinoline-based, quinone-based, phenol-based, and phenylenediamine-based anti-aging agents.
- the content with respect to 100 parts by mass of the rubber component in the case of containing an antioxidant is, for example, in the range of 0.5 to 10 parts by mass, 0.5 to 5 parts by mass, or 1 to 3 parts by mass.
- the content with respect to 100 parts by mass of the rubber component is, for example, in the range of 0.2 to 10 parts by mass, 0.5 to 5 parts by mass, or 1 to 3 parts by mass.
- the content with respect to 100 parts by mass of the rubber component is, for example, in the range of 0.5 to 10 parts by mass, 0.5 to 5 parts by mass, or 1 to 3 parts by mass.
- Sulfur is preferably used as the vulcanizing agent.
- sulfur powdered sulfur, oil-treated sulfur, precipitated sulfur, colloidal sulfur, insoluble sulfur, highly dispersible sulfur, and the like can be used.
- the content with respect to 100 parts by mass of the rubber component when sulfur is contained as a vulcanizing agent is, for example, 0.5 to 3.0 parts by mass, 1.0 to 2.5 parts by mass, or 0.5 to 2.0 parts by mass. A range of parts.
- vulcanization accelerator examples include sulfenamide, thiazole, thiuram, thiourea, guanidine, dithiocarbamic acid, aldehyde-amine or aldehyde-ammonia, imidazoline, and xanthate vulcanization accelerators. Etc. These vulcanization accelerators may be used alone or in combination of two or more. Of these, sulfenamide vulcanization accelerators, thiazole vulcanization accelerators, and guanidine vulcanization accelerators are preferable, and sulfenamide vulcanization accelerators are more preferable. A combination of a sulfenamide vulcanization accelerator and another vulcanization accelerator (preferably a thiazole vulcanization accelerator and / or a guanidine vulcanization accelerator) can also be mentioned as a preferred embodiment.
- a sulfenamide vulcanization accelerator and another vulcanization accelerator preferably a thiazole
- sulfenamide vulcanization accelerator examples include N-tert-butyl-2-benzothiazolylsulfenamide (TBBS), N-cyclohexyl-2-benzothiazolylsulfenamide (CBS), N, N -Dicyclohexyl-2-benzothiazolylsulfenamide (DCBS) and the like.
- TBBS N-tert-butyl-2-benzothiazolylsulfenamide
- CBS N-cyclohexyl-2-benzothiazolylsulfenamide
- CBS N-cyclohexyl-2-benzothiazolylsulfenamide
- Examples of the thiazole vulcanization accelerator include 2-mercaptobenzothiazole, cyclohexylamine salt of 2-mercaptobenzothiazole, di-2-benzothiazolyl disulfide, and the like. Of these, 2-mercaptobenzothiazole is preferable.
- Examples of guanidine vulcanization accelerators include 1,3-diphenylguanidine, 1,3-di-o-tolylguanidine, 1-o-tolylbiguanide, dicatechol borate di-o-tolylguanidine salt, 1, Examples include 3-di-o-cumenyl guanidine, 1,3-di-o-biphenyl guanidine, 1,3-di-o-cumenyl-2-propionyl guanidine, and the like. Of these, 1,3-diphenylguanidine is preferable.
- the content relative to 100 parts by mass of the rubber component is, for example, in the range of 0.1 to 5 parts by mass, 0.5 to 3 parts by mass, or 0.5 to 2 parts by mass.
- the polymer composition according to this embodiment can be produced by a known method.
- the above components can be produced by a method of kneading using a rubber kneading device such as an open roll, a Banbury mixer, a closed kneader, and then vulcanizing.
- a rubber kneading device such as an open roll, a Banbury mixer, a closed kneader, and then vulcanizing.
- a Banbury mixer is used to knead chemicals (including rotaxane compounds) other than sulfur and a vulcanization accelerator to obtain a kneaded product.
- sulfur and a vulcanization accelerator are added to the obtained kneaded product and kneaded using an open roll to obtain an unvulcanized rubber composition. Further, the obtained unvulcanized rubber composition is press vulcanized to obtain a vulcanized rubber composition.
- Example 1 The rotaxane compound (1-4) was synthesized by the method and conditions shown by the following formula.
- Example 1-1 Synthesis of alkoxysilane compound (1-1) Using commercially available 3-mercaptopropyltriethoxysilane and diphenylnitroethene, a nitroalkane compound (1-0) was obtained according to a known method. Phenyl isocyanate (6.3 g) and triethylamine (7.8 g) were added to a solution of compound (1-0) (12 g) in THF (150 mL), and the mixture was stirred at room temperature for 5 hours.
- Example 1-2 Synthesis of nitroalkane compound (1-3) Axial molecular component (1-a) (470 mg) was added to a solution of cyclic molecular component (1-r) (710 mg) in dichloromethane (1.4 mL). Stir for hours. Subsequently, compound (1-2) (660 mg), DIC (0.47 mL) and (tert-butyl) phosphine (50 ⁇ L) were added, and the mixture was stirred at room temperature for 24 hours. The reaction solution was reprecipitated in hexane and purified using preparative GPC (eluent: chloroform) to obtain a nitroalkane compound (1-3) (620 mg).
- Example 1-3 Synthesis of rotaxane compound (1-4)
- Compound (1-1) (290 mg) was added to a solution of compound (1-3) (560 mg) in chloroform (5.0 mL), and the mixture was stirred at 50 ° C. Stir for hours.
- the solvent was distilled off, dissolved in THF (8.6 mL), phenyl isocyanate (290 mg) and triethylamine (350 mg) were added, and the mixture was stirred at room temperature for 4 hr. After filtration of the reaction solution, the solvent of the filtrate was distilled off, and purification was performed using preparative GPC (eluent: chloroform) to obtain a rotaxane compound (1-4) (200 mg).
- the rotaxane compound of the present invention can be used as a silane coupling agent that imparts specific dynamic properties and physical properties to the blended composition.
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Abstract
Description
〔1〕1個以上の環状分子と、該環状分子の内孔部を貫通する軸分子であって、該環状分子が脱離しないように配置されるキャップ構造を有する軸分子とを含むロタキサン化合物であって、環状分子および軸分子のうちの一方に、シリカと反応可能な官能基および炭素-炭素不飽和結合と反応可能な官能基のうちの一方を有し、かつ、環状分子および軸分子のうちの他方に、シリカと反応可能な官能基および炭素-炭素不飽和結合に反応可能な官能基のうちの他方を有するロタキサン化合物、
〔2〕前記環状分子が、クラウンエーテル、シクロデキストリン、シクロファン、カリックスアレーン、ククルビットウリル、およびピラーアレーンからなる群より選択される少なくとも1つである〔1〕記載のロタキサン化合物、
〔3〕前記環状分子が、下記式(1a)、(1b)、または(1c):
〔4〕前記軸分子が、下記式(3):
〔5〕前記環状分子1分子に対して、軸分子1分子が貫通している、〔1〕~〔4〕のいずれかに記載のロタキサン化合物、
〔6〕前記シリカと反応可能な官能基が、アルコキシシリル、アセトキシシリル、およびクロロシリルからなる群より選択される少なくとも1つである〔1〕~〔5〕のいずれかに記載のロタキサン化合物、
〔7〕前記炭素-炭素不飽和結合と反応可能な官能基が、ニトリルオキシド、アジド、ニトロン、ニトリルイミン、シドノン、メチロールフェノール、メルカプト、スルフィド、ビニル、ビニレン、エチニル、エチニレン、シアノ、イソシアネート、イソシアヌレート、エポキシ、グリシルオキシ、アクリロイル、メタクリロイル、およびウレイドからなる群より選択される少なくとも1つである〔1〕~〔6〕のいずれかに記載のロタキサン化合物、
〔8〕炭素-炭素不飽和結合を有するポリマーと、〔1〕~〔7〕のいずれかに記載のロタキサン化合物とを含むポリマー組成物、
〔9〕前記ポリマーがジエン系ゴムである〔8〕記載のポリマー組成物、
〔10〕ジエン系ゴム、シリカ、および〔1〕~〔7〕のいずれかに記載のロタキサン化合物を含有するゴム組成物、
〔11〕〔1〕~〔7〕のいずれかに記載のロタキサン化合物を含有するシランカップリング剤、に関する。
本実施形態に係るロタキサン化合物は、当業者が通常ロタキサンについて理解する通り、環状分子と軸分子が共有結合を介することなく、空間的な結合で結ばれた分子である。本実施形態に係るロタキサン化合物は、1個以上の環状分子と、該環状分子の内孔部を貫通する軸分子であって、該環状分子が脱離しないように配置されるキャップ構造を有する軸分子とからなり、環状分子および軸分子のうちの一方に、シリカと反応可能な官能基および炭素-炭素不飽和結合と反応可能な官能基のうちの一方を有し、かつ、環状分子および軸分子のうちの他方に、シリカと反応可能な官能基および炭素-炭素不飽和結合に反応可能な官能基のうちの他方を有することを特徴とする。このことから、本実施形態に係るロタキサン化合物は、新規なシランカップリング剤として利用することができる。
本実施形態に係るロタキサン化合物は、その構成中に、シリカと反応可能な官能基および炭素-炭素不飽和結合と反応可能な官能基を有する。なお、本明細書においては、これらの官能基を単に「反応性基」と総称することがある。
本実施形態に係るロタキサン化合物は、その構成分子として1個以上の環状分子を含有する。合成の容易さの観点からは、1~3個の環状分子に対して、軸分子1分子が貫通しているロタキサン化合物(すなわち、1~3個の環状分子を包摂するロタキサン化合物)が好ましい。さらに、ロタキサンの基本単位として、ロタキサン構造を架橋点とする材料の性質を精密に制御する観点からは、環状分子1分子に対して、軸分子1分子が貫通しているロタキサン化合物(すなわち[2]ロタキサン)が特に好ましい。
本実施形態に係るロタキサン化合物は、その構成分子として軸分子を含有する。該軸分子は、環状分子の内径よりも大きい外径を有する嵩高い基、すなわちキャップ構造を有する。キャップ構造の位置は、軸分子が環状分子から脱離しない限り特に限定されず、軸分子の末端に存在してもよいし、軸分子の中間に存在してもよい。
本実施形態に係るロタキサン化合物の好適な一態様は、下記式(2):
本実施形態に係るロタキサン化合物は、Threading-Capping法等の公知の方法や、文献記載の方法(例えば、オレオサイエンス 第5巻、第5号、2005年、209頁)またはこれに準じた方法により、製造することができる。
本実施形態に係るロタキサン化合物をシランカップリング剤として用い、ポリマー組成物を製造することができる。該ロタキサン化合物を配合したポリマー組成物は、伸縮性、応力緩和性、耐摩耗性等の向上が期待できる。なお、加硫ゴム組成物の損失正接(tanδ)および複素弾性率は、市販の粘弾性スペクトロメータにより測定することができる。加硫ゴムおよび熱可塑性ゴムの引張特性はJIS K 6251に準じて測定することができる。加硫ゴムの応力緩和試験はJIS K 6263に準じて実施することができる。
DIC:ジイソプロピルカルボジイミド
Bu3P:トリ(tert-ブチル)ホスフィン
THF:テトラヒドロフラン
Ph:フェニル
Et:エチル
1H-NMR (500Hz, CDCl3, 298K): δ(ppm) 7.60-7.47 (m, 4H), 7.42-7.30 (m, 6H), 3.78 (q, J = 7.0Hz, 6H), 2.61 (t, J = 7.3Hz, 2H), 1.72-1.65 (m, 2H), 1.20 (t, J = 7.0Hz, 9H), 0.70-0.67 (m, 2H);
13C-NMR (125Hz, CDCl3, 298K): δ(ppm) 139.2, 128.8, 128.6, 127.4, 58.4, 57.2, 35.7, 22.0, 18.3, 10.3;
IR (NaCl): υ 2287 (CNO) cm-1;
MALDI-TOF MS (Matrix: dithranol, Cationizing agent: CF3COONa): m/z calcd for C23H31NO4SSiNa [M+Na]+: 468.17, found: 468.34.
環状分子成分(1-r)(710mg)のジクロロメタン(1.4mL)溶液に軸分子成分(1-a)(470mg)を加え2時間撹拌した。続いて化合物(1-2)(660mg)、DIC(0.47mL)、(tert-ブチル)ホスフィン(50μL)を加えて室温で24時間撹拌した。反応溶液をヘキサンに再沈殿し、分取GPC(溶離液:クロロホルム)を用いて精製することにより、ニトロアルカン化合物(1-3)(620mg)を得た。
1H-NMR (500Hz, CDCl3, 298K): δ(ppm) 7.35-7.21 (m, 20H), 7.19-7.05 (m, 2H), 6.97-6.82 (m, 10H), 5.85-5.77 (m, 1H), 5.34 (s, 2H), 5.04-4.94 (m, 2H), 4.51 (q, J = 7.0Hz, 2H), 4.40 (s, 2H), 4.25-4.21 (m, 4H), 4.12-4.09 (m, 4H), 4.05 (t, J = 6.9Hz, 2H), 3.86-3.81 (m, 8H), 3.64-3.61 (m, 4H), 3.46 (m, t, J = 6.9Hz, 2H), 3.43-3.38 (m, 4H), 3.09-3.03 (m, 2H), 2.49 (t, J = 7.5Hz, 2H), 2.13 (q, J = 7.2Hz, 2H), 1.98-1.93 (m, 2H), 1.73-1.67 (m, 2H), 1.64-1.58 (m, 2H), 1.44-0.96 (m, 20H);
13C-NMR (125Hz, CDCl3, 298K): δ(ppm) 173.6, 147.5, 147.4, 146.9, 141.4, 138.3, 138.2, 132.3, 132.3, 130.7, 128.4, 128.1, 127.3, 126.6, 121.8, 121.0, 114.8, 112.7, 112.6, 112.4, 112.1, 81.3, 79.7, 72.4, 70.7, 70.2, 69.7, 68.4, 68.3, 68.2, 64.5, 62.0, 52.2, 49.0, 31.1, 30.4, 29.5, 29.4, 29.3, 29.2, 28.9, 28.6, 26.6, 26.4, 25.9, 25.0, 21.2;
MALDI-TOF MS (Matrix: dithranol, Cationizing agent: CF3COONa): m/z calcd for C69H97N2O14Na [M+Na]+: 1177.74, found: 1177.26.
化合物(1-3)(560mg)のクロロホルム(5.0mL)溶液に、化合物(1-1)(290mg)を加え、50℃で12時間撹拌した。溶媒を留去し、THF(8.6mL)に溶解させ、フェニルイソシアネート(290mg)およびトリエチルアミン(350mg)を加え、室温で4時間撹拌した。反応液を濾過後、ろ液の溶媒を留去し、分取GPC(溶離液:クロロホルム)を用いて精製することにより、ロタキサン化合物(1-4)(200mg)を得た 。
1H-NMR (500Hz, CDCl3, 298K): δ(ppm) 7.52-7.14 (m, 23H), 6.92-6.67 (m, 12H), 4.58-4.52 (m, 1H), 4.48 (s, 2H), 4.36 (s, 2H), 4.20-4.04 (m, 8H), 4.00 (t, J = 6.9Hz, 2H), 3.74 (q, J = 6.7Hz, 6H), 3.73-3.68 (m, 8H), 3.61-3.36 (m, 14H), 2.96-2.91 (m, 1H), 2.53-2.48 (m, 3H), 2.33-2.24 (m, 2H), 2.20 (s, 6H), 2.15-2.09 (m, 2H), 2.00-1.95 (m, 2H), 1.74-1.65 (m, 1H),1.59-1.50 (m, 8H), 1.18 (t, J = 6.7Hz, 9H), 1.30-0.91 (m, 18H), 0.62-0.59 (m, 2H);
13C-NMR (125Hz, CDCl3, 298K): δ(ppm) 173.7, 161.0, 155.8, 148.2, 147.7, 141.3, 141.2, 140.7, 140.6, 139.2, 137.4, 130.5, 128.9, 128.6, 128.5, 128.4, 128.3, 128.1, 127.3, 126.6, 126.3, 124.9, 121.7, 120.5, 119.9, 119.8, 111.9, 111.5, 83.9, 80.9, 72.7, 70.8, 69.7, 69.5, 68.4, 68.3, 68.2, 65.9, 64.8, 61.0, 58.3, 49.2, 47.5, 41.6, 33.8, 31.8, 30.8, 30.1, 29.8, 29.7, 29.6, 29.3, 28.6, 27.6, 26.6, 25.9, 25.8, 24.7, 22.1, 21.4, 18.3, 10.4;
IR (NaCl): υ 2275 (CNO) cm-1;
MALDI-TOF MS (Matrix: dithranol, Cationizing agent: CF3COONa): m/z calcd for C99H130N4O18SSiNa [M+Na]+: 1745.93, found: 1745.89.
Claims (10)
- 1個以上の環状分子と、該環状分子の内孔部を貫通する軸分子であって、該環状分子が脱離しないように配置されるキャップ構造を有する軸分子とを含むロタキサン化合物であって、
環状分子および軸分子のうちの一方に、シリカと反応可能な官能基および炭素-炭素不飽和結合と反応可能な官能基のうちの一方を有し、かつ、環状分子および軸分子のうちの他方に、シリカと反応可能な官能基および炭素-炭素不飽和結合に反応可能な官能基のうちの他方を有するロタキサン化合物。 - 前記環状分子が、クラウンエーテル、シクロデキストリン、シクロファン、カリックスアレーン、ククルビットウリル、およびピラーアレーンからなる群より選択される少なくとも1つである請求項1記載のロタキサン化合物。
- 前記環状分子が、下記式(1a)、(1b)、または(1c):
[式中、W4は、単結合、または直鎖状もしくは分枝状のアルキレン鎖、-CO-O-、-O-CO-、-O-、-CO-、-S-、-CS-、-NH-、-NR1-(式中、R1は、炭素数1~6のアルキル基を表す)、ベンゼン環、複素芳香族環、飽和もしくは部分不飽和の炭化水素環、および飽和もしくは部分不飽和のヘテロ環からなる群より選択される構成単位を有する1~100個の原子から構成されるスペーサーを表し;R3は、シリカと反応可能な官能基、または炭素-炭素不飽和結合と反応可能な官能基を表し;ここにおいて、該環状分子は、ハロゲン、アルキル、およびアルコキシからなる群から選択される同種または異種の1~4個の基で置換されていてもよく;環構成酸素原子のうちの1~3個は、NHまたはSに置き換えられていてもよい]で表されるクラウンエーテル環状分子であって、前記環状分子がロタキサン化合物中に複数存在する場合は、該環状分子は同一であってもよく、異なっていてもよい、請求項1または2記載のロタキサン化合物。 - 前記軸分子が、下記式(3):
[式中、B1およびB2は、同一または異なってキャップ構造を表し;W1およびW2は、同一または異なって、単結合、または直鎖状もしくは分枝状のアルキレン鎖、-CO-O-、-O-CO-、-O-、-CO-、-S-、-CS-、-NH-、-NR1-(式中、R1は、炭素数1~6のアルキル基を表す)、ベンゼン環、複素芳香族環、飽和もしくは部分不飽和の炭化水素環、および飽和もしくは部分不飽和のヘテロ環からなる群より選択される構成単位を有する1~100個の原子から構成されるスペーサーを表し;ここにおいて、B1およびB2の少なくとも一方が-W3-R2(式中、W3は、単結合、または直鎖状もしくは分枝状のアルキレン鎖、-CO-O-、-O-CO-、-O-、-CO-、-S-、-CS-、-NH-、-NR1-(式中、R1は、炭素数1~6のアルキル基を表す)、ベンゼン環、複素芳香族環、飽和もしくは部分不飽和の炭化水素環、および飽和もしくは部分不飽和のヘテロ環からなる群より選択される構成単位を有する1~100個の原子から構成されるスペーサーを表し;R2は、シリカと反応可能な官能基、または炭素-炭素不飽和結合と反応可能な官能基を表す)で置換されており;B1およびB2は、ハロゲン、アルキル、およびアルコキシからなる群から選択される同種または異種の1~4個の基で置換されていてもよく;2級アンモニウム(-N+H2-)部の水素原子は、アルキル、アルキルカルボニル、アルキルアミノカルボニル、アルコキシカルボニル、置換されていてもよいフェニルカルボニル、置換されていてもよいフェニルアミノカルボニル、または置換されていてもよいフェノキシカルボニルで置換されていてもよく;R1、R2およびW3が複数存在する場合は、同一でもよく、異なっていてもよい]で表される軸分子である、請求項1~3のいずれか一項に記載のロタキサン化合物。 - 前記環状分子1分子に対して、軸分子1分子が貫通している、請求項1~4のいずれか一項に記載のロタキサン化合物。
- 前記シリカと反応可能な官能基が、アルコキシシリル、アセトキシシリル、およびクロロシリルからなる群より選択される少なくとも1つである請求項1~5のいずれか一項に記載のロタキサン化合物。
- 前記炭素-炭素不飽和結合と反応可能な官能基が、ニトリルオキシド、アジド、ニトロン、ニトリルイミン、シドノン、メチロールフェノール、メルカプト、スルフィド、ビニル、ビニレン、エチニル、エチニレン、シアノ、イソシアネート、イソシアヌレート、エポキシ、グリシルオキシ、アクリロイル、メタクリロイル、およびウレイドからなる群より選択される少なくとも1つである請求項1~6のいずれか一項に記載のロタキサン化合物。
- 炭素-炭素不飽和結合を有するポリマーと、請求項1~7のいずれか一項に記載のロタキサン化合物とを含むポリマー組成物。
- 前記ポリマーがジエン系ゴムである請求項8記載のポリマー組成物。
- ジエン系ゴム、シリカ、および請求項1~7のいずれか一項に記載のロタキサン化合物を含有するゴム組成物。
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| JP2020515580A JP7280581B2 (ja) | 2018-04-26 | 2019-04-25 | ロタキサン化合物 |
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| JP2020050823A (ja) * | 2018-09-28 | 2020-04-02 | Toyo Tire株式会社 | ゴム組成物、及びそれを用いた空気入りタイヤ、並びにゴム組成物の製造方法 |
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| CN119552148A (zh) * | 2024-11-29 | 2025-03-04 | 岭南师范学院 | 一种轮烷类机械互锁分子的制备方法 |
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| JP2022047722A (ja) * | 2020-09-14 | 2022-03-25 | 豊田合成株式会社 | 架橋ゴム組成物及びその製造方法 |
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| JP7280581B2 (ja) | 2023-05-24 |
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| CN112020505A (zh) | 2020-12-01 |
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