Patent classifications
H01G11/56
Power storage element, manufacturing method thereof, and power storage device
Disclosed is a power storage element including a positive electrode current collector layer and a negative electrode current collector layer which are arranged on the same plane and can be formed through a simple process. The power storage element further includes a positive electrode active material layer on the positive electrode current collector layer; a negative electrode active material layer on the negative electrode current collector layer; and a solid electrolyte layer in contact with at least the positive electrode active material layer and the negative electrode active material layer. The positive electrode active material layer and the negative electrode active material layer are formed by oxidation treatment.
Power storage element, manufacturing method thereof, and power storage device
Disclosed is a power storage element including a positive electrode current collector layer and a negative electrode current collector layer which are arranged on the same plane and can be formed through a simple process. The power storage element further includes a positive electrode active material layer on the positive electrode current collector layer; a negative electrode active material layer on the negative electrode current collector layer; and a solid electrolyte layer in contact with at least the positive electrode active material layer and the negative electrode active material layer. The positive electrode active material layer and the negative electrode active material layer are formed by oxidation treatment.
INTEGRATED FLEXIBLE SELF-CHARGING POWER SUPPLY FOR ENERGY HARVESTING IN AGRICULTURAL ENVIRONMENT AND PREPARATION METHOD THEREOF
An integrated flexible self-charging power supply for energy harvesting in an agricultural environment and a preparation method thereof are provided, wherein the integrated flexible self-charging power supply for the energy harvesting in the agricultural environment includes polydimethylsiloxane (PDMS) and a graphene electrode entirely encapsulated in the PDMS, where the graphene electrode includes a power generation portion and an interdigital portion; the power generation portion and the interdigital portion are integrally encapsulated in the PDMS; the interdigital portion is covered with a solid electrolyte; two ends of the interdigital portion of the graphene electrode are led out by wires to serve as two output ends of the power supply.
INTEGRATED FLEXIBLE SELF-CHARGING POWER SUPPLY FOR ENERGY HARVESTING IN AGRICULTURAL ENVIRONMENT AND PREPARATION METHOD THEREOF
An integrated flexible self-charging power supply for energy harvesting in an agricultural environment and a preparation method thereof are provided, wherein the integrated flexible self-charging power supply for the energy harvesting in the agricultural environment includes polydimethylsiloxane (PDMS) and a graphene electrode entirely encapsulated in the PDMS, where the graphene electrode includes a power generation portion and an interdigital portion; the power generation portion and the interdigital portion are integrally encapsulated in the PDMS; the interdigital portion is covered with a solid electrolyte; two ends of the interdigital portion of the graphene electrode are led out by wires to serve as two output ends of the power supply.
SOLID ELECTROLYTE, ELECTRODE, BATTERY, CAPACITOR, AND METHOD OF PRODUCING SOLID ELECTROLYTE
An object of the present invention is to provide a solid electrolyte which exhibits good ionic conductivity in a room temperature state and is excellent in moldability, productivity, and quality stability, an electrode, a battery and a capacitor using the solid electrolyte, and a method of producing the solid electrolyte. The present invention is a solid electrolyte containing an alkali metal salt and a polymer, wherein the polymer has, for example, a monomer unit of a chemical formula (1).
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CHITIN REGENERATIVE HYDROGEL AND PREPARATION METHOD AND APPLICATION THEREOF
The present invention discloses a chitin regenerative hydrogel and a preparation method and application thereof, which belong to the technical field of energy materials. The preparation method of the chitin regenerative hydrogel comprises the following steps: 1, performing heating dissolution and cooling molding on chitin and ionic liquid to obtain chitin-ionic liquid gel; and S2, soaking the chitin-ionic liquid gel into alkaline solution to obtain the chitin regenerative hydrogel. The chitin-ionic liquid gel and the chitin regenerative hydrogel that are prepared in the present invention have good restoring capacity and thixotropy capacity. The chitin-ionic liquid gel is soaked into potassium hydroxide aqueous solution for replacement to obtain the chitin-based regenerative hydrogel, the chitin-based regenerative hydrogel is taken as a polymer electrolyte diaphragm for assembling a supercapacitor, and the obtained capacitor has higher specific capacitance and charging/discharging efficiency, and good rate capability and reversibility.
Advanced electrolytes for high temperature energy storage device
An ultracapacitor that includes an energy storage cell immersed in an electrolyte and disposed within an hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein the ultracapacitor has a gel or polymer based electrolyte and is configured to output electrical energy at temperatures between about −40° C. and about 250° C. Methods of fabrication and use are provided.
Advanced electrolytes for high temperature energy storage device
An ultracapacitor that includes an energy storage cell immersed in an electrolyte and disposed within an hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein the ultracapacitor has a gel or polymer based electrolyte and is configured to output electrical energy at temperatures between about −40° C. and about 250° C. Methods of fabrication and use are provided.
Thermoelectric electrochemical conversion devices
A heat capacitor with simple structure, easy to manufacture and high thermoelectric conversion efficiency is provided. The heat capacitor includes: a pair of electrodes, at least one said electrode being a carbonaceous electrode; and a thermoelectric electrolyte disposed between the pair of electrodes, wherein the distance between the pair of electrodes is at most 1 mm.
Thermoelectric electrochemical conversion devices
A heat capacitor with simple structure, easy to manufacture and high thermoelectric conversion efficiency is provided. The heat capacitor includes: a pair of electrodes, at least one said electrode being a carbonaceous electrode; and a thermoelectric electrolyte disposed between the pair of electrodes, wherein the distance between the pair of electrodes is at most 1 mm.