H01M4/50

Electrochemical cell having solid ionically conducting polymer material

The invention features an electrochemical cell having an anode and a cathode; wherein at least one of the anode and cathode includes a solid ionically conducting polymer material that can ionically conduct hydroxyl ions.

REDUCED GRAPHENE OXIDE/MANGANESE(IV) OXIDE NANOCOMPOSITE AND ELECTRODE COMPRISING SAME, METHOD OF MANUFACTURE OF VARIOUS GRAPHENE MATERIAL/METAL OXIDE NANOCOMPOSITES

A reduced graphene oxide/manganese(IV) oxide nanocomposite is provided. This nanocomposite comprises reduced graphene oxide flakes and manganese oxide nanoparticles distributed on the surface of the flakes. Electrodes comprising this nanocomposite are also provided. Embodiments of such electrodes displayed broad voltage windows. A method for producing the nanocomposites as well as other nanocomposites is also provided. The method comprises the step of electrochemically exfoliating graphite in an exfoliation electrolyte comprising an intercalant and a precursor which is an oxometallate, a polyoxometalate, a thiometallate, or metal salt together with an acid.

BATTERY HAVING A LOW OUTPUT VOLTAGE

An electrochemical battery cell comprising an anode having a primary anode active material, a cathode, and an ion-conducting electrolyte, wherein the cell has an initial output voltage, Vi, measured at 10% depth of discharge (DoD), selected from a range from 0.3 volts to 0.8 volts, and a final output voltage Vf measured at a DoD no greater than 90%, wherein a voltage variation, (Vi−Vf)/Vi, is no greater than ±10% and the specific capacity between Vi and Vf is no less than 100 mAh/g or 200 mAh/cm.sup.3 based on the cathode active material weight or volume, and wherein the primary anode active material is selected from lithium (Li), sodium (Na), potassium (K), magnesium (Mg), aluminum (Al), zinc (Zn), titanium (Ti), manganese (Mn), iron (Fe), vanadium (V), cobalt (Co), nickel (Ni), a mixture thereof, an alloy thereof, or a combination thereof.

Lithium ion secondary battery

An object of the present invention is to provide a lithium ion secondary battery enabling improvement of output characteristics at the time of charge and discharge at low temperature and at room temperature. A lithium ion secondary battery according to the present invention for achieving the above object includes a positive electrode plate (11) including a positive electrode mix layer, and a negative electrode plate (12) including a negative electrode mix layer (45). The negative electrode mix layer (45) contains a graphite-type material (42), metal oxide (44), and a conductive assistant (43). The conductive assistant (43) is a carbon material that does not dope or dedope lithium ions, and a mixing ratio of the conductive assistant (43) is 0.4 weight % or more and less than 1.2 weight % of weight of the negative electrode mix layer (45).

Method for manufacturing a positive electrode sheet for a lithium ion secondary battery and a positive electrode sheet for a lithium ion secondary battery

A method for producing a positive electrode sheet is provided with a positive current collecting foil made of aluminum and a battery positive active material layer containing positive active material particles made of LiNiMn based spinel and applied and dried on the current collecting foil. The positive active material layer includes a first binder made of polyacrylic acid with a molecular weight of 50,000 or less and a second binder made of polyacrylic acid with a molecular weight of 300,000 or more. The first positive electrode paste forming the positive active material layer satisfies expressions (1) to (3):
α≥1.7  (1)
β≥0.9  (2)
α+β≤3.0  (3)
where α is an additive amount of the first binder in pts. wt. and β is an additive amount of the second binder in pts. wt. when other solid content is 100 pts. wt.

Nonaqueous electrolyte secondary battery and method for manufacturing the same

A method for manufacturing a nonaqueous electrolyte secondary battery which includes an electrode assembly, a housing with an opening and contains the electrode assembly, and a sealing member sealing the opening, the electrode assembly comprising a positive electrode and a negative electrode. The positive electrode includes a positive electrode active material, lithium carbonate, and lithium phosphate, the negative electrode comprising a negative electrode active material. The method includes placing the electrode assembly in the housing, and placing a nonaqueous electrolyte containing lithium fluorosulfonate in the housing.

LITHIUM PRIMARY BATTERY

A positive electrode, a negative electrode containing lithium, and a nonaqueous electrolyte having lithium ion conductivity are installed. The nonaqueous electrolyte contains a nonaqueous solvent and a solute. The positive electrode contains a positive electrode active material containing at least manganese dioxide, a conductive agent, and a binding agent and further contains an oxide and sulfate of a rare-earth element.

Negative electrode current collector, negative electrode, and aqueous lithium ion secondary battery

There is provided a negative electrode current collector that is used in contact with an aqueous electrolyte solution in an aqueous lithium ion secondary battery, including a surface in contact with the aqueous electrolyte solution, the surface including a material containing at least one selected from the group consisting of Ti, Pb, Zn, Sn, Mg, Zr and In as a main component.

Negative electrode current collector, negative electrode, and aqueous lithium ion secondary battery

There is provided a negative electrode current collector that is used in contact with an aqueous electrolyte solution in an aqueous lithium ion secondary battery, including a surface in contact with the aqueous electrolyte solution, the surface including a material containing at least one selected from the group consisting of Ti, Pb, Zn, Sn, Mg, Zr and In as a main component.

BIPOLAR ZINC ION BATTERY
20210126261 · 2021-04-29 ·

The invention discloses a bipolar zinc ion battery, which includes at least one unit group, wherein the unit group includes at least one battery unit, and the battery unit includes an anode plastic current collector layer, an isolating film and a cathode plastic current collector layer sequentially laminated and mutually adhered and sealed on a periphery, a cathode active material layer arranged inside a cathode plastic current collector and acted as a cathode, an anode active material layer arranged inside the anode plastic current collector layer and acted as an anode, an electrolyte solution soaked in gaps among the cathode, the anode and the isolating film and containing a zinc compound, and a porous ion channel arranged on the isolating film between the cathode and the anode for zinc ions to move on. The invention has a simple structure, a light weight, and very good safety performance and use performance.