Patent classifications
C08F12/24
Functionalized resin having a polar linker
- Emily Baird Anderson ,
- John Dayton Baker, Jr. ,
- Terri Roxanne Carvagno ,
- Judicael Jacques Chapelet ,
- Wei-Min Cheng ,
- Liu Deng ,
- Jacobus Gillis De Hullu ,
- Sebastian Finger ,
- Hubert Hirschlag ,
- Christopher Lee Lester ,
- Wentao Li ,
- Mutombo Joseph Muvundamina ,
- Mark Stanley Pavlin ,
- Fabian Peters ,
- Carla Recker ,
- Christopher Thomas Scilla
Polar silane linkers are provided that attach to resins to form silane-functionalized resins. The functionalized resins can be bound to hydroxyl groups on the surface of silica particles to improve the dispersibility of the silica particles in rubber mixtures. Further disclosed are synthetic routes to provide the silane-functionalized resins, as well as various uses and end products that benefit from the unexpected properties of the silane-functionalized resins. Silane-functionalized resins impart remarkable properties on various rubber compositions, such as tires, belts, hoses, brakes, and the like. Automobile tires incorporating the silane-functionalized resins are shown to possess excellent results in balancing the properties of rolling resistance, tire wear, and wet braking performance.
Functionalized resin having a polar linker
- Emily Baird Anderson ,
- John Dayton Baker, Jr. ,
- Terri Roxanne Carvagno ,
- Judicael Jacques Chapelet ,
- Wei-Min Cheng ,
- Liu Deng ,
- Jacobus Gillis De Hullu ,
- Sebastian Finger ,
- Hubert Hirschlag ,
- Christopher Lee Lester ,
- Wentao Li ,
- Mutombo Joseph Muvundamina ,
- Mark Stanley Pavlin ,
- Fabian Peters ,
- Carla Recker ,
- Christopher Thomas Scilla
Polar silane linkers are provided that attach to resins to form silane-functionalized resins. The functionalized resins can be bound to hydroxyl groups on the surface of silica particles to improve the dispersibility of the silica particles in rubber mixtures. Further disclosed are synthetic routes to provide the silane-functionalized resins, as well as various uses and end products that benefit from the unexpected properties of the silane-functionalized resins. Silane-functionalized resins impart remarkable properties on various rubber compositions, such as tires, belts, hoses, brakes, and the like. Automobile tires incorporating the silane-functionalized resins are shown to possess excellent results in balancing the properties of rolling resistance, tire wear, and wet braking performance.
HARD MASK-FORMING COMPOSITION AND METHOD FOR MANUFACTURING ELECTRONIC COMPONENT
A hard mask-forming composition which forms a hard mask used in lithography, including: a resin containing an aromatic ring and a polar group; and a compound containing at least one of an oxazine ring fused to an aromatic ring, and a fluorene ring.
HARD MASK-FORMING COMPOSITION AND METHOD FOR MANUFACTURING ELECTRONIC COMPONENT
A hard mask-forming composition which forms a hard mask used in lithography, including: a resin containing an aromatic ring and a polar group; and a compound containing at least one of an oxazine ring fused to an aromatic ring, and a fluorene ring.
RESIN COMPOSITION, ANTI-ETCHING LAYER AND ETCHING METHOD
A resin composition, an anti-etching layer and an etching method are provided. The resin composition includes a resin (A), a crosslinking agent (B), a surfactant (C), and a solvent (D). The resin (A) includes a hydroxyl type polystyrene resin (A-1), a hydroxyl type phenolic resin (A-2), a polyhydroxy phenol resin (A-3), or a combination thereof. The crosslinking agent (B) includes a structure of novolac epoxy resin type (B-1), polymethyl methacrylate type (B-2), maleimide type (B-3) or hyperbranched oligomer (B-4).
Adhesives and methods of making the same
Embodiments of this invention relate to adhesives, and more particularly to biomimetic heteropolymer adhesive compositions. Certain embodiments relate to biomimetic terpolymer adhesive compositions including dopamine methacrylamide, 3,4-dihydroxyphenylalanine, or 3,4-dihydroxystyrene, mimicking moieties found in marine mussel adhesive proteins. In some embodiments, elastic moduli of the adhesives are preferably selected to match the elastic moduli of the substrates to minimize stress concentrations, to increase the ductility of the adhesive-substrate system, or both.
Adhesives and methods of making the same
Embodiments of this invention relate to adhesives, and more particularly to biomimetic heteropolymer adhesive compositions. Certain embodiments relate to biomimetic terpolymer adhesive compositions including dopamine methacrylamide, 3,4-dihydroxyphenylalanine, or 3,4-dihydroxystyrene, mimicking moieties found in marine mussel adhesive proteins. In some embodiments, elastic moduli of the adhesives are preferably selected to match the elastic moduli of the substrates to minimize stress concentrations, to increase the ductility of the adhesive-substrate system, or both.
COMPOUND, POLYMER, COMPOSITION, COMPOSITION FOR FILM FORMATION, PATTERN FORMATION METHOD, INSULATING FILM FORMATION METHOD, AND METHOD FOR PRODUCING COMPOUND, AS WELL AS METHOD FOR PRODUCING IODINE-CONTAINING VINYL POLYMER AND ACETYLATED DERIVATIVE THEREOF
Provided is a compound having one or more halogens and an unsaturated double bond. Provided is a method for producing an iodine-containing vinyl monomer comprising: a) a step of providing an iodine-containing alcohol substrate having a general structure represented by the formula (1-1):
##STR00001##
(the definitions of the variables in the formula (1-1) are as described in the specification); and b) a step of dehydrating the iodine-containing alcohol substrate to obtain the iodine-containing vinyl monomer having a general structure represented by the formula (1):
##STR00002##
(the definitions of the variables in the formula (1) are as described in the specification).
Catechol-Containing Material For Use In Dental Applications
The present disclosure is directed to a polymeric layer comprising a catechol containing a monomer, polymer, or oligomer, wherein said catechol presents as a catechol and/or as a semi-quinone and/or as a quinone without the presence of a primary amine or a secondary amine; and wherein the polymeric layer optionally comprises a reactive material that is not reactive with catechol or quinone. The present disclosure is also directed to a polymeric layer comprising a catechol containing monomer, polymer, or oligomer disposed adjacent to and in contact with a bulk adhesive layer. The present disclosure is also directed to methods of coating a substrate using the layers described herein.
LARGE SCALE PRODUCTION OF CATECHOL-CONTAINING POLYMERS
This invention relates to a method for manufacturing a catechol-containing co-polymer through a suspension polymerization or a solution polymerization process. In some illustrative embodiments, this disclosure relates to a process of a free radical suspension polymerization for large-scale manufacturing catechol-containing copolymers. In some other illustrative embodiments, this disclosure relates to a solution polymerization of free radical, cationic, or anionic process for large-scale manufacturing catechol-containing copolymers. The process and the product thereof are within the scope of this disclosure.