Patent classifications
C03C2214/17
SYSTEM AND METHOD FOR DIRECT ELECTROLESS PLATING OF 3D-PRINTABLE GLASS FOR SELECTIVE SURFACE PATTERNING
The present disclosure relates to a method for forming a glass structure having a metallized surface portion. The method may comprise forming a structure using a flowable first material, adapted to form a glass, which includes a metal component. The structure is then treated to remove substantially all solvents and organic components contained in the first flowable material. Finally, the structure is exposed to a bath of a metal salt during which nucleation occurs and a metallized surface coating is formed on at least a portion of an outer surface of the structure.
TRANSITION METAL CHALCOGENIDE THIN-LAYER MATERIAL, PREPARATION METHOD AND APPLICATION THEREOF
Disclosed are a transition metal chalcogenide thin-layer material, a preparation method and an application thereof. The preparation method comprises: uniformly spreading a transition metal source between two substrates to prepare a sandwich structure; performing a heat treatment on the sandwich structure to fuse and bond the two substrates together, and performing a chemical vapor deposition reaction on a chalcogen element source and the fused and bonded sandwich structure under the protection of a protective gas, wherein the transition metal source is heated to dissolve and diffuse at a reaction temperature, separated out from surfaces of the substrates, and reacts with the chalcogen element source. The prepared thin-layer material is uniformly distributed in a centimeter-level substrate.
GALLIUM-BASED GLASS COMPOSITION
A gallium silica glass composition is described. The glass can be used in variety of biomedical applications
Chemical-free production of graphene-reinforced inorganic matrix composites
Provided is a simple, fast, scalable, and environmentally benign method of producing a graphene-reinforced inorganic matrix composite directly from a graphitic material, the method comprising: (a) mixing multiple particles of a graphitic material and multiple particles of an inorganic solid carrier material to form a mixture in an impacting chamber of an energy impacting apparatus; (b) operating the energy impacting apparatus with a frequency and an intensity for a length of time sufficient for peeling off graphene sheets from the graphitic material and transferring the graphene sheets to surfaces of solid inorganic carrier material particles to produce graphene coated or graphene-embedded inorganic particles inside the impacting chamber; and (c) forming graphene-coated or graphene-embedded inorganic particles into the graphene-reinforced inorganic matrix composite. Also provided is a mass of the graphene-coated or graphene-embedded inorganic particles produced by this method.
METHOD AND DEVICE FOR PRODUCING CONDUCTIVE GLASS FIBER MESH WITH LASER INDUCED COATING GRAPHENE
A method for producing a conductive glass fiber mesh with laser induced coating graphene comprises: (I) preparing a glass fiber paper coated with a carbon-containing precursor material; (II) subjecting the glass fiber paper coated with the carbon-containing precursor material to laser irradiation to reduce the carbon-containing precursor material into the laser induced coating graphene, obtaining a glass fiber paper coated with the laser induced coating graphene; and (III) folding the glass fiber paper coated with the laser induced coating graphene to obtain the conductive glass fiber mesh with laser induced coating graphene.
Chemical-free production of graphene-reinforced inorganic matrix composites
Provided is a simple, fast, scalable, and environmentally benign method of producing a graphene-reinforced inorganic matrix composite directly from a graphitic material, the method comprising: (a) mixing multiple particles of a graphitic material and multiple particles of an inorganic solid carrier material to form a mixture in an impacting chamber of an energy impacting apparatus; (b) operating the energy impacting apparatus with a frequency and an intensity for a length of time sufficient for peeling off graphene sheets from the graphitic material and transferring the graphene sheets to surfaces of solid inorganic carrier material particles to produce graphene coated or graphene-embedded inorganic particles inside the impacting chamber; and (c) forming graphene-coated or graphene-embedded inorganic particles into the graphene-reinforced inorganic matrix composite. Also provided is a mass of the graphene-coated or graphene-embedded inorganic particles produced by this method.
Artificial glass surface
The invention relates to the technical field of artificial stone surfaces, in particular to an artificial glass surface, which is made from the following raw materials in parts by mass: 0-30 parts of a quartz material, 40-70 parts of a glass material, 5-15 parts of a modified silicone resin, 8-15 parts of an unsaturated polyester resin, and 5-14 parts of additional raw materials. The artificial glass surface employs recycled glass material as its main stone source, which contributes the conservation of mineral resources, and reduces production costs; the product is of higher quality.
ARTIFICIAL GLASS SURFACE
The invention relates to the technical field of artificial stone surfaces, in particular to an artificial glass surface, which is made from the following raw materials in parts by mass: 0-30 parts of a quartz material, 40-70 parts of a glass material, 5-15 parts of a modified silicone resin, 8-15 parts of an unsaturated polyester resin, and 5-14 parts of additional raw materials. The artificial glass surface employs recycled glass material as its main stone source, which contributes the conservation of mineral resources, and reduces production costs; the product is of higher quality.
GALLIUM-BASED GLASS COMPOSITION
A gallium silica glass composition is described. The glass can be used in variety of biomedical applications
Gallium-based glass composition
A gallium silica glass composition is described. The glass can be used in variety of biomedical applications.