H01B1/04

Conductive material, electrode comprising the conductive material, secondary battery comprising the electrode, and method for preparing the conductive material

A conductive material, and a method for preparing the same are provided. The conductive material has a structure where a plurality of graphene sheets are interconnected, wherein an oxygen content is 1 wt % or higher based on the total weight of the conductive material, and a D/G peak ratio is 2.0 or less when the Raman spectrum is measured.

SINTERED BODY ELECTRODE, BATTERY MEMBER, SINTERED BODY ELECTRODE AND BATTERY MEMBER MANUFACTURING METHODS, SOLID ELECTROLYTE PRECURSOR SOLUTION, SOLID ELECTROLYTE PRECURSOR, AND SOLID ELECTROLYTE
20230216021 · 2023-07-06 ·

Provided is a sintered body electrode, a battery member, and sintered body electrode and battery member manufacturing methods all of which can increase the safety and operate a battery at low temperatures. A sintered body electrode 3 according to the present invention contains: a carbon electrode material made of graphite or hard carbon; and an alkali-ion conductive solid electrolyte.

CARBON NANOMATERIAL-BASED STRUCTURE USING ELECTRON BEAM, FLEXIBLE TRANSPARENT ELECTRODE COMPRISING THE SAME, AND METHOD FOR PRODUCING THE SAME
20230215597 · 2023-07-06 ·

Disclosed is a carbon nanomaterial-based structure, including: a polymer resin layer; and a carbon nanomaterial layer stacked on the polymer substrate, wherein the carbon nanomaterial is a carbon nanomaterial doped by electron beams.

CARBON NANOMATERIAL-BASED STRUCTURE USING ELECTRON BEAM, FLEXIBLE TRANSPARENT ELECTRODE COMPRISING THE SAME, AND METHOD FOR PRODUCING THE SAME
20230215597 · 2023-07-06 ·

Disclosed is a carbon nanomaterial-based structure, including: a polymer resin layer; and a carbon nanomaterial layer stacked on the polymer substrate, wherein the carbon nanomaterial is a carbon nanomaterial doped by electron beams.

PREPARING METHOD FOR CONDUCTIVE COMPOSITE, CONDUCTIVE COMPOSITE AND PIEZORESISTIVE DEVICE USING THE SAME
20230212371 · 2023-07-06 ·

A method of preparing a conductive composite includes immersing a porous base material in a conductive coating solution, and drying the conductive coating solution on the porous base material to form a conductive coating layer on the porous base material. The conductive coating solution includes conductive particles and a solvent, and the surface tension of the solvent is lower than the surface tension of the porous base material by 8 mN/m or more, and a conductive composite is prepared therefrom.

PREPARING METHOD FOR CONDUCTIVE COMPOSITE, CONDUCTIVE COMPOSITE AND PIEZORESISTIVE DEVICE USING THE SAME
20230212371 · 2023-07-06 ·

A method of preparing a conductive composite includes immersing a porous base material in a conductive coating solution, and drying the conductive coating solution on the porous base material to form a conductive coating layer on the porous base material. The conductive coating solution includes conductive particles and a solvent, and the surface tension of the solvent is lower than the surface tension of the porous base material by 8 mN/m or more, and a conductive composite is prepared therefrom.

Method for producing p-type 4H-SiC single crystal

A method for producing a p-type 4H—SiC single crystal includes sublimating a nitrided aluminum raw material and a SiC raw material. Further, there is a stacking of a SiC single crystal, which is co-doped with aluminum and nitrogen, on one surface of a seed crystal.

Method for producing p-type 4H-SiC single crystal

A method for producing a p-type 4H—SiC single crystal includes sublimating a nitrided aluminum raw material and a SiC raw material. Further, there is a stacking of a SiC single crystal, which is co-doped with aluminum and nitrogen, on one surface of a seed crystal.

Anode active material for lithium secondary battery, method of manufacturing same and lithium secondary battery comprising same

The present disclosure relates to an anode active material for a lithium secondary battery, a method of manufacturing the anode active material, and a lithium secondary battery including the anode active material. The anode active material includes natural graphite particles configured such that flaky natural graphite fragment particles having uneven (□□) surface defects are structured in a cabbage shape or at random and granulated, the surface and the inside of the natural graphite particles including a gap formed between the flaky natural graphite fragment particles, and a coating layer including amorphous or semicrystalline carbon formed on the surface of the flaky natural graphite fragment particles that form the gap and the surface of the natural graphite particles.

Anode active material for lithium secondary battery, method of manufacturing same and lithium secondary battery comprising same

The present disclosure relates to an anode active material for a lithium secondary battery, a method of manufacturing the anode active material, and a lithium secondary battery including the anode active material. The anode active material includes natural graphite particles configured such that flaky natural graphite fragment particles having uneven (□□) surface defects are structured in a cabbage shape or at random and granulated, the surface and the inside of the natural graphite particles including a gap formed between the flaky natural graphite fragment particles, and a coating layer including amorphous or semicrystalline carbon formed on the surface of the flaky natural graphite fragment particles that form the gap and the surface of the natural graphite particles.