Patent classifications
C01B32/914
SELENIUM-DOPED MXENE COMPOSITE NANO-MATERIAL, AND PREPARATION METHOD AND USE THEREOF
The present invention discloses a selenium-doped MXene composite nano-material and a preparation method thereof, comprising the following steps: (1) adding MXene and an organic selenium source into a dispersant, and stirring to prepare a dispersion with a concentration of 1 mg/ml to 100 mg/ml; (2) transferring the dispersion into a reaction kettle, then heating, reacting, and then naturally cooling to a room temperature; (3) washing the product obtained in the step (2) with a cleaning agent, then centrifuging to collect a precipitate, and drying the precipitate under vacuum; and (4) placing the sample obtained in the step (3) into a tubular furnace for calcination, introducing protective gas, heating, and then cooling to a room temperature to obtain the selenium-doped MXene composite nano-material. The material prepared by the present invention has high specific surface area, good electrical conductivity, cycle stability performance, rate performance and high theoretical specific capacity.
CARBON MATERIAL COATED WITH TANTALUM CARBIDE
The present invention relates to a carbon material coated with tantalum carbide and, more specifically, to a carbon material coated with tantalum carbide, comprising: a carbon substrate; and a tantalum carbide coated surface formed on the carbon substrate, wherein the carbon material coated with tantalum carbide has, as main peaks, X-ray diffraction peaks of the (111) plane, the (200) plane, the (220) plane and the (311) plane, of the tantalum carbide coated surface, and the peak of the (111) plane among the peaks has the maximum diffraction intensity. The present invention can provide the carbon material coated with tantalum carbide, having excellent chemical and physical resistance and extended lifespan.
CARBON MATERIAL COATED WITH TANTALUM CARBIDE
The present invention relates to a carbon material coated with tantalum carbide and, more specifically, to a carbon material coated with tantalum carbide, comprising: a carbon substrate; and a tantalum carbide coated surface formed on the carbon substrate, wherein the carbon material coated with tantalum carbide has, as main peaks, X-ray diffraction peaks of the (111) plane, the (200) plane, the (220) plane and the (311) plane, of the tantalum carbide coated surface, and the peak of the (111) plane among the peaks has the maximum diffraction intensity. The present invention can provide the carbon material coated with tantalum carbide, having excellent chemical and physical resistance and extended lifespan.
CARBONATED TANTALUM COATING MATERIAL
The present disclosure relates to a tantalum carbide coating material, and more specifically, to a tantalum carbide coating material comprising: a carbon substrate; and a tantalum carbide coating formed on the carbon substrate, wherein a thermal expansion coefficient difference between the carbon substrate and the tantalum carbide coating is 1.010.sup.6/ C. or more.
CARBONATED TANTALUM COATING MATERIAL
The present disclosure relates to a tantalum carbide coating material, and more specifically, to a tantalum carbide coating material comprising: a carbon substrate; and a tantalum carbide coating formed on the carbon substrate, wherein a thermal expansion coefficient difference between the carbon substrate and the tantalum carbide coating is 1.010.sup.6/ C. or more.
Process for pure carbon production
The disclosure provides for methods of oxidizing carbide anions, or negative ions, from salt like carbides at low temperatures below about 600 C. In another aspect, the disclosure provides for reactions with intermediate transition metal carbides. In yet another aspect, the disclosure provides for a system of reactions where salt-like carbide anions and intermediate carbide anions are oxidized to produce pure carbon of various allotropes.
METHOD OF MANUFACTURING TANTALUM CARBIDE MATERIAL
A method of manufacturing a tantalum carbide material of the present invention includes heating a tantalum material (1) interposed between a pair of graphite guide members (2 and 3) under an atmosphere of a carbon source-containing gas (4) at 1,500 C. or higher for 0.5 hours or longer.
METHOD OF MANUFACTURING TANTALUM CARBIDE MATERIAL
A method of manufacturing a tantalum carbide material of the present invention includes heating a tantalum material (1) interposed between a pair of graphite guide members (2 and 3) under an atmosphere of a carbon source-containing gas (4) at 1,500 C. or higher for 0.5 hours or longer.
Physical Forms of MXene Materials Exhibiting Novel Electrical and Optical Characteristics
The present invention(s) is directed to novel conductive M.sub.n+1X.sub.n(T.sub.s) compositions exhibiting high volumetric capacitances, and methods of making the same. The present invention(s) is also directed to novel conductive M.sub.n+1X.sub.n(T.sub.s) compositions, methods of preparing transparent conductors using these materials, and products derived from these methods.
Physical Forms of MXene Materials Exhibiting Novel Electrical and Optical Characteristics
The present invention(s) is directed to novel conductive M.sub.n+1X.sub.n(T.sub.s) compositions exhibiting high volumetric capacitances, and methods of making the same. The present invention(s) is also directed to novel conductive M.sub.n+1X.sub.n(T.sub.s) compositions, methods of preparing transparent conductors using these materials, and products derived from these methods.