Patent classifications
C08F228/06
POLYMERIZATION OF 3-METHOXTHIOPHENE (MOT) MONOMER ON POLY-(ACRYLONITRILE -CO-ITACONIC ACID) MATRIX AND METHOD FOR NANO FIBER DERIVATIVE BY METHOD OF ELECTRO-SPINNING OF PRODUCED NANO-PARTICULATES
The nano-fibre derivative method includes polymerization of 3-methoxthiophene (MOT) monomer on Poly(acrylonitrile co-itaconic acid) matrix and by use of electro-spinning of the produced nano-particulate.
POLYMERIZATION OF 3-METHOXTHIOPHENE (MOT) MONOMER ON POLY-(ACRYLONITRILE -CO-ITACONIC ACID) MATRIX AND METHOD FOR NANO FIBER DERIVATIVE BY METHOD OF ELECTRO-SPINNING OF PRODUCED NANO-PARTICULATES
The nano-fibre derivative method includes polymerization of 3-methoxthiophene (MOT) monomer on Poly(acrylonitrile co-itaconic acid) matrix and by use of electro-spinning of the produced nano-particulate.
COPOLYMERIZATION OF ELEMENTAL SULFUR TO SYNTHESIZE HIGH SULFUR CONTENT POLYMERIC MATERIALS
Copolymerization of elemental sulfur with functional comonomers afford sulfur copolymers having a high molecular weight and high sulfur content. Nucleophilic activators initiate sulfur polymerizations at relative lower temperatures and in solutions, which enable the use of a wider range of comonomers, such as vinylics, styrenics, and non-homopolymerizing comonomers. Nucleophilic activators promote ring-opening reactions to generate linear polysulfide intermediates that copolymerize with comonomers. Dynamic sulfur-sulfur bonds enable re-processing or melt processing of the sulfur polymer. Chalcogenide-based copolymers have a refractive index of about 1.7-2.6 at a wavelength in a range of about 5000 nm-8.Math..Math.. The sulfur copolymer can be a thermoplastic or a thermoset for use in elastomers, resins, lubricants, coatings, antioxidants, cathode materials for electrochemical cells, dental adhesives/restorations, and polymeric articles such as polymeric films and free-standing substrates. Optical substrates are constructed from the chalcogenide copolymer and are substantially transparent in the visible and infrared spectrum.
Inorganic composite coatings comprising novel functionalized acrylics
Disclosed is a sol-gel coating composition comprising: one or more silane hydrolysis promoting acids; at least one silanol precursor; and an acrylic-based co-polymer comprising nitrogen-containing organic functional groups, and methods of making and using same, as well as metals coated using the compositions.
Inorganic composite coatings comprising novel functionalized acrylics
Disclosed is a sol-gel coating composition comprising: one or more silane hydrolysis promoting acids; at least one silanol precursor; and an acrylic-based co-polymer comprising nitrogen-containing organic functional groups, and methods of making and using same, as well as metals coated using the compositions.
HOSE WITH TUNABLE FLEXIBILITY USING CYCLIZABLE, PHOTOCHROMIC MOLECULES
Embodiments of the disclosure generally provide compositions and methods related to articles that display reversible photoresponsive behavior.
Conductive polymer nanoparticles and use thereof
The present disclosure provides a conductive polymer material. The conductive polymer material includes a conductive polymer having structural units derived from the following monomers: (a) a monomer of formula (I): ##STR00001## and (b) a monomer having an ethylenically unsaturated group which has the following formula: ##STR00002##
wherein A, X, R1, R2, R6 to R9, q and w are described in the specification. The conductive polymer material of the present disclosure has high withstand voltage and high capacitance and can be used for the preparation of solid capacitors or hybrid capacitors. In addition, the conductive polymer material according to the present disclosure has high electrical conductivity and good water washing resistance and is thus useful for an antistatic coating or smart fabrics.
Conductive polymer nanoparticles and use thereof
The present disclosure provides a conductive polymer material. The conductive polymer material includes a conductive polymer having structural units derived from the following monomers: (a) a monomer of formula (I): ##STR00001## and (b) a monomer having an ethylenically unsaturated group which has the following formula: ##STR00002##
wherein A, X, R1, R2, R6 to R9, q and w are described in the specification. The conductive polymer material of the present disclosure has high withstand voltage and high capacitance and can be used for the preparation of solid capacitors or hybrid capacitors. In addition, the conductive polymer material according to the present disclosure has high electrical conductivity and good water washing resistance and is thus useful for an antistatic coating or smart fabrics.
Self-healing conjugated polymer, composition for forming self-healing photoactive layer including the conjugated polymer and organic solar cell including photoactive layer formed using the composition
A self-healing conjugated polymer is disclosed. The self-healing conjugated polymer has hydrogen bonding functional groups introduced into its side chains. Due to this structure, the conjugated polymer is imparted with the ability to recover through self-healing while maintaining its inherent properties (for example, physical and electrical properties). Based on this effective self-healing ability, the conjugated polymer is expected to find application as a biomaterial, a pharmaceutical material, a nonlinear optical material or an organic electronic material.
Self-healing conjugated polymer, composition for forming self-healing photoactive layer including the conjugated polymer and organic solar cell including photoactive layer formed using the composition
A self-healing conjugated polymer is disclosed. The self-healing conjugated polymer has hydrogen bonding functional groups introduced into its side chains. Due to this structure, the conjugated polymer is imparted with the ability to recover through self-healing while maintaining its inherent properties (for example, physical and electrical properties). Based on this effective self-healing ability, the conjugated polymer is expected to find application as a biomaterial, a pharmaceutical material, a nonlinear optical material or an organic electronic material.