Abstract:
PROBLEM TO BE SOLVED: To obtain the new compound useful for single molecular films, accumulated films, polymer films, fluorinated carbon-insoluble water-repelling polymer thin films, UV light resists, etc., improved in physical strengths, stability and uniformity and excellent in lubricity and water repellency. SOLUTION: A compound of the formula [(n) is 0-2; R is H, methyl; R is a 1-14C perfluoroalkyl], e.g. N-1H,1H-heptafluorobutylacrylamide. The compound of the formula is obtained by reacting a 2-(perfluoroalkyl)alkyl iodide with sodium azide, reducing the obtained corresponding 2-(perfluoroalkyl) alkylamide with lithium aluminum hydride, and subsequently reacting the obtained polyfluoroalkylamine with acrylic acid chloride in the presence of a catalyst. The obtained N-polyfluoroalkyl-substituted acrylamide can give polymers excellent in mechanical strengths, solvent resistance, corrosion resistance and plasma resistance.
Abstract:
PROBLEM TO BE SOLVED: To provide a sensor capable of not only enhancing the timely and spatial resolution of the sensor using a temperature sensing film using a temperature indication material, but also manufacturing the sensor with desired sensitivity and resolution with good reproduction. SOLUTION: A temperature indication thin film makes a polymer carrying a temperature sensitive pigment a ultra-thin film by an LB method. The polymer carrying a temperature sensitive pigment can have oxygen impermeability, and further the thin film (pDDA layer) with the oxygen impermeability is desired to be provided on the outside of a ultra-thin film polymer carrying the temperature sensitive pigment.
Abstract:
PROBLEM TO BE SOLVED: To obtain a polymerie Langmuir-Blodgett film having a thickness which is even and is controllable even on the nanometer level and having controlled molecular orientation and improved sensitivity and resolution by using a poly-N-substituted methacrylamide. SOLUTION: A solution obtained by dissolving in an organic solvent 0.0001-0.005 mol/l of a poly-N-substituted methacrylamide comprising repeating units of the formula and having a number-average molecular weight of 1,000-100,000, particularly, 2,000-30,000 is added dropwise to the surface of water in an amount of 3-5 ml/10 cm2, and the organic solvent is evaporated to obtain a poly-N-substituted methacrylamide polymer monomolecular film. This film is pressed to a specified buildup pressure by means of the movable barrier of a surface pressure indicator and a substrate is moved up and down so as to cross the film. In the formula, R is an 8-18C linear alkyl, a 4 or 5C branched alkyl, an (unsubstituted) 1-16C linear alkyl, a 3-6C branched alkyl, or a phenyl substituted with a substituent selected from hydroxyl and a halogen.
Abstract:
PROBLEM TO BE SOLVED: To provide a monomolecular film or a laminated film therefrom having a plurality of monomolecular films that is useful for a resist material or the like. SOLUTION: The monomolecular film or a laminated film therefrom is produced by coating a substrate with a monomolecular film of a copolymer of an acrylic- or styrenic addition-polymerizable monomer comprising a silsesquioxane derivative and an addition polymerizable monomer represented by formula (B) (wherein R b denotes hydrogen or a methyl: Z 2 is -NH-; and n is an integer of 2-20). COPYRIGHT: (C)2009,JPO&INPIT
Abstract:
PROBLEM TO BE SOLVED: To provide an optical element material excellent in thermooptic coefficient, solvent resistance, and heat resistance, and further having stable quality controlled in molecular weight. SOLUTION: The optical element is prepared using a polymer prepared using a cage silsesquioxane derivative represented by formula (1-0) where R is independently a 1-40C alkyl, a 6-40C aryl any hydrogen of which may be substituted by a halogen or a 1-20C alkyl, or a 7-40C arylalkyl in which any hydrogen in an aryl may be substituted by a halogen or a 1-20C alkyl. COPYRIGHT: (C)2008,JPO&INPIT
Abstract:
PROBLEM TO BE SOLVED: To provide a monomolecular film in which hydrophobic groups or hydrophilic groups are regularly oriented at the nanometer-level, to provide a polymer thin film comprising the plurality of monomolecular films laminated. SOLUTION: The method for producing the monomolecular film is characterized as follows. A substrate is coated with the monomolecular film of a copolymer of a fluorosilsesquioxane containing one addition polymerizable functional group with an addition polymerizable monomer according to the Langmuir-Blodgett method. COPYRIGHT: (C)2008,JPO&INPIT
Abstract:
PROBLEM TO BE SOLVED: To provide a microchannel system by which when two liquids not mixing with each other are allowed to flow in a channel and to come into contact with each other, the two liquids flow while forming an interface between the two and forming layers without aggregating and forming any aggregation and they can be separated again at the microscale, a reaction apparatus using the microchannel system, and the like. SOLUTION: The microchannel system has a minute channel for moving liquids, at least 2 introduction paths for injecting liquids into the microchannel, at least 1 discharging path for discharging liquids from the microchannel, and the inner surface of the microchannel having a part hydrophilized and a part hydrophobized, wherein the part hydrophilized and the part hydrophobized span each from the upstream end to the downstream end of the channel and the treatment to provide hydrophilicity and/or the treatment to provide hydrophobicity is performed by accumulation of polymer LB membranes. Also provided are a reaction apparatus using the microchannel system and the like. COPYRIGHT: (C)2006,JPO&NCIPI
Abstract:
PROBLEM TO BE SOLVED: To provide a polymer built-up film having a high orderly film structure with con trolled molecular orientation, forming a stable coating film and having a smooth film surface and a film thickness adjustable by building-up frequency on a nanometer level and to provide a composite polymer built-up film and a high sensitivity and high resolution resist material comprising the built-up film and a photo-acid generating agent or a polymer built-up film having photo-acid generating function. SOLUTION: The polymer built-up film comprises a copolymer of an N-alkyl substituted acrylamide and tert-butoxycarboxystyrene and a photo-acid generating agent. The composite polymer built-up film comprises a polymer built-up film comprising the above copolymer and a polymer built-up film comprising a copolymer of neopentyl methacrylamide and anthryl methacrylate. A resist material using the polymer built-up film comprising the copolymer of an N-alkyl substituted acrylamide and tert-butoxy carboxystyrene and the photo-acid generating agent and a resist material comprising the composite polymer built-up film comprising the above copolymer and the polymer built-up film comprising the copolymer of neopentyl methacrylamide and anthryl methacrylate are obtained.
Abstract:
PROBLEM TO BE SOLVED: To provide a polymer and a silicone resin molding excellent in transparency, which are little in modulus variation at a glass transition temperature or above and freely foldable, and to provide a substrate for a display element using the silicone resin molding. SOLUTION: The polymer, which includes a silsesquioxane backbone, is obtained by reacting a specific, cage-type silicone compound (1-1) having an alkenyl group, a specific, cage-type silicone compound (2-2) having a Si-H group, and a specific, straight chain-type silicone compound (3-2) having a Si-H group. Let the number of moles of the alkenyl that the compound used for the reaction and represented by (1-1) has be (A), the number of moles of the Si-H that the compound represented by (3-2) has be (C), and the above compounds are reacted so that m in the (3-2) and the ratio of the (C) to (A) satisfy the equation (m+2)×(C)/(A)=1-3 in order to obtain the polymer. COPYRIGHT: (C)2010,JPO&INPIT
Abstract:
PROBLEM TO BE SOLVED: To provide an electric board material capable of forming a circuit efficiently by an irradiation of laser beams. SOLUTION: The laser beams are irradiated on a material in which metal particulates are adhered onto a surface of a formed body of a synthetic resin composed of a polymer containing a silsesquioxane structure exemplified in the formula (1), the formula (2) and the formula (3), to manufacture the electric board material. In the formula (1), the formula (2) and the formula (3), each R independently denotes phenyl, cyclopentyl, cyclohexyl, or perfluoroalkyl or t-butyl in which a carbon number is 1-10, and each R 1 independently denotes alkyl or phenyl in which a carbon number is 1-4. COPYRIGHT: (C)2008,JPO&INPIT