Patent classifications
C08G73/105
GLASS ARTICLES WITH MIXED POLYMER AND METAL OXIDE COATINGS
According to one or more embodiments, a pharmaceutical package may include a glass container and a coating. The glass container may include a first surface and a second surface opposite the first surface. The first surface may be an outer surface of the glass container. The coating may be positioned over at least a portion of the first surface of the glass container. The coating may include one or more polyimide compositions and one or more metal oxide compositions. The one or more polyimide compositions and the one or more metal oxide compositions may be mixed in the coating.
POLYIMIDE PRECURSOR, POLYIMIDE, AND FLEXIBLE PRINTED CIRCUIT BOARD
Provided are a polyimide precursor which contains a diamine-derived structural unit and a tetracarboxylic dianhydride-derived structural unit, contains a dimer diamine-derived structural unit in an amount of at least 10 mol % but not more than 80 mol % relative to total units of the diamine-derived structural unit, has a weight average molecular weight of at least 15,000 but not more than 130,000, and is used for a base film of a flexible printed circuit board, as well as a resin composition containing the polyimide precursor, and a polyimide obtained using the resin composition.
POLYIMIDE COMPOSITIONS AND ARTICLES INCORPORATING THE SAME
Compositions including a polyimide and one or more thermally conductive fillers, and compaction rollers for an automated fiber placement machine incorporating the compositions are provided. The polyimide may be a polymeric reaction product of a dianhydride and one or more diamines. The one or more diamines may include a fluorine-containing alkyl ether diamine. The one or more thermally conductive fillers may include one or more of a carbon-based filler, boron nitride, a metal, or combinations thereof. The compositions may have a thermal conductivity of from about 0.2 to about 50 Watts per meter Kelvin (Wm.sup.−1 K.sup.−1).
ELECTROCHROMIC POLYAMIC ACID MATERIAL, PREPARATION METHOD THEREOF, AND DISPLAY DEVICE
The present invention provides an electrochromic polyamic acid material, a preparation method thereof and a display device, wherein the molecular structure of the electrochromic polyamic acid material includes oligoaniline and carbazolyl triphenylamine. The oligoaniline serves as an electrochemically sensitive group, and the carbazolyl triphenylamine serves as a fluorescence emitting group. The electrochromic polyamic acid material is an electrically controlled fluorescent polymer. Fluorescence intensity of the electrochromic polyamic acid material undergoes reversible fluorescence conversion with a change of an applied voltage, due to a redox reaction of the oligoaniline at different voltages, resulting in an interchange between a benzene ring and an anthracene ring in a molecular structure, and an electron/energy transfer path with the fluorescence emitting group are generated or eliminated, thereby realizing the electrically controlled fluorescent properties of the electrochromic polyamic acid material.
COMPOSITION AND METAL INSULATING COVER MATERIAL
A composition containing a solvent and a polyimide resin precursor and/or polyimide resin, wherein the polyimide resin precursor and/or polyimide resin includes a compound represented by Formula (0) below and/or a compound represented by Formula (0′) below, and a compound including a functional group that reacts with a terminally cyclized product of the compound represented by Formula (0) below and/or the compound represented by Formula (0′) below.
##STR00001##
In Formula (0) and Formula (0′) above, R′ each independently represent a hydrogen atom or an alkyl group. R.sup.a represents a tetracarboxylic acid residue. R.sup.b represents a diamine residue. R.sup.a and/or R.sup.b includes one linking group including an active hydrogen and/or one or more and four or less substituents including an active hydrogen. p and q represent given integers.
Liquid crystal aligning agent composition, method for producing liquid crystal alignment film using same, and liquid crystal alignment film using same
The present invention relates to a liquid crystal aligning agent composition capable of securing a high imidization rate under relatively mild curing conditions, minimizing side reactions and thus having excellent stability, a method for producing a liquid crystal alignment film using the same, and a liquid crystal alignment film and a liquid crystal display device using the same.
Copolymer for liquid crystal alignment agent, liquid crystal alignment agent including the same, and liquid crystal alignment film and liquid crystal display device using the same
A polymer having excellent liquid crystal alignment and electrical properties and thus is suitable for use as a liquid crystal alignment agent, a liquid crystal alignment agent including the same, a liquid crystal alignment film formed from the liquid crystal alignment agent, and a liquid crystal display device including the liquid crystal alignment film are provided.
Anisotropic copoly(imide oxetane) coatings and articles of manufacture, copoly(imide oxetane)s containing pendant fluorocarbon moieties, oligomers and processes therefor
Copoly(imide oxetane) materials are disclosed that can exhibit a low surface energy while possessing the mechanical, thermal, chemical and optical properties associated with polyimides. The copoly(imide oxetane)s are prepared using a minor amount of fluorinated oxetane-derived oligomer with sufficient fluorine-containing segments of the copoly(imide oxetane)s migrate to the exterior surface of the polymeric material to yield low surface energies. Thus the coatings and articles of manufacture made with the copoly(imide oxetane)s of this invention are characterized as having an anisotropic fluorine composition. The low surface energies can be achieved with very low content of fluorinated oxetane-derived oligomer. The copolymers of this invention can enhance the viability of polyimides for many applications and may be acceptable where homopolyimide materials have been unacceptable.
Method for preparing a porous polyimide film and a composite membrane comprising the same
The present invention relates to a method for preparing a porous polyimide film, comprising reacting an aromatic dianhydride with one or more aromatic diamines in a suitable solvent to form poly(amic acid), adding a dehydrated agent of an acid anhydride and an organic base to the reaction mixture to convert the poly(amic acid) to a polyimide precursor, casting the reaction mixture comprising the polyimide precursor onto a solid support to form a film, coagulating the polyimide precursor in a coagulating bath comprising a mixture of a solvent and a non-solvent to develop a porous structure, and drying the coagulated polyimide precursor in air to form the porous polyimide film. A composite membrane comprising same and its use are also provided.
GLASS ARTICLES WITH MIXED POLYMER AND METAL OXIDE COATINGS
According to one or more embodiments, a pharmaceutical package may include a glass container and a coating. The glass container may include a first surface and a second surface opposite the first surface. The first surface may be an outer surface of the glass container. The coating may be positioned over at least a portion of the first surface of the glass container. The coating may include one or more polyimide compositions and one or more metal oxide compositions. The one or more polyimide compositions and the one or more metal oxide compositions may be mixed in the coating.