H01M4/50

Energy storage device, an electrode for an energy storage device, and a method of fabricating the electrode

An electrode for an energy storage device and a method of fabricating such electrode. The electrode includes a plurality of layers of active material defining a layer material structure; and an interlayer material disposed between each adjacent pairs of layer of the active material. The interlayer material is arranged to facilitate a transportation of ions along and/or across the plurality of layers of active material during a charging or a discharging operation of the energy storage device.

Energy storage device, an electrode for an energy storage device, and a method of fabricating the electrode

An electrode for an energy storage device and a method of fabricating such electrode. The electrode includes a plurality of layers of active material defining a layer material structure; and an interlayer material disposed between each adjacent pairs of layer of the active material. The interlayer material is arranged to facilitate a transportation of ions along and/or across the plurality of layers of active material during a charging or a discharging operation of the energy storage device.

AQUEOUS MANGANESE ION BATTERY

An alternative grid energy storage system is described herein. In one embodiment, an electrochemical cell comprises a high specific surface area cathode (e.g., a cathode comprising a carbon nanofoam paper, a carbon nanotube mesh, a particulate carbon material, electrolytic manganese dioxide, or a manganese dioxide film), a zinc or lead anode (e.g., Zn or Pb foil), a selective ion-conductive separator that does not conduct zinc ions (e.g., a NAFION sulfonated tetrafluoroethylene based fluoropolymer-copolymer separator) between the anode and the cathode, and an aqueous electrolyte comprising a manganese salt (e.g., aqueous manganese sulfate) contacting the electrodes and the separator. A battery comprising two or more of the electrochemical cells electrically connected together in series, parallel, or both, also is described.

Substituted ramsdellite manganese dioxides in an alkaline electrochemical cell

Substituted ramsdellite manganese dioxide (R—MnO.sub.2) compounds are provided, where a portion of the Mn is replaced by at least one alternative cation, or a portion of the O is replaced by at least one alternative anion. Electrochemical cells incorporating substituted R—MnO.sub.2 into the cathode, as well as methods of preparing the substituted R—MnO.sub.2, are also provided.

Substituted ramsdellite manganese dioxides in an alkaline electrochemical cell

Substituted ramsdellite manganese dioxide (R—MnO.sub.2) compounds are provided, where a portion of the Mn is replaced by at least one alternative cation, or a portion of the O is replaced by at least one alternative anion. Electrochemical cells incorporating substituted R—MnO.sub.2 into the cathode, as well as methods of preparing the substituted R—MnO.sub.2, are also provided.

Reversible manganese dioxide electrode, method for the production thereof, the use thereof, and rechargeable alkaline-manganese battery containing said electrode

The invention relates to a reversible manganese dioxide electrode, comprising an electrically conductive carrier material having a nickel surface, a nickel layer made of spherical nickel particles adhering to each other and having an inner pore structure applied to the carrier material, and a manganese dioxide layer applied to the nickel particles, wherein the manganese dioxide layer is also present in the inner pore structure of the nickel particle. The invention also relates to a method for producing such a manganese dioxide electrode, the use thereof in rechargeable alkaline-manganese batteries, and a rechargeable alkaline-manganese battery containing a manganese dioxide electrode according to the invention.

Reversible manganese dioxide electrode, method for the production thereof, the use thereof, and rechargeable alkaline-manganese battery containing said electrode

The invention relates to a reversible manganese dioxide electrode, comprising an electrically conductive carrier material having a nickel surface, a nickel layer made of spherical nickel particles adhering to each other and having an inner pore structure applied to the carrier material, and a manganese dioxide layer applied to the nickel particles, wherein the manganese dioxide layer is also present in the inner pore structure of the nickel particle. The invention also relates to a method for producing such a manganese dioxide electrode, the use thereof in rechargeable alkaline-manganese batteries, and a rechargeable alkaline-manganese battery containing a manganese dioxide electrode according to the invention.

ELECTROCHEMICAL FORMATION OF SUBSTRATE COATINGS

Systems, articles, and methods generally related to the electrochemical formation of layers comprising halogen ions on substrates are described.

ELECTROCHEMICAL FORMATION OF SUBSTRATE COATINGS

Systems, articles, and methods generally related to the electrochemical formation of layers comprising halogen ions on substrates are described.

POWER SUPPLY APPARATUS AND COMMUNICATION APPARATUS
20230402663 · 2023-12-14 ·

A power supply apparatus includes a primary battery, a secondary battery, and an output terminal. The secondary battery is coupled in parallel with the primary battery. The output terminal outputs electric power from the secondary battery to an outside. A discharge capacity of the primary battery is larger than a discharge capacity of the secondary battery.