H01M4/75

Rechargeable battery with pseudo-reference electrode

Energy storage devices, battery cells, and rechargeable batteries of the present technology may include an anode and a cathode. The battery cells may include a separator positioned between the anode and the cathode. The battery cells may include an electrolyte incorporated with the anode and the cathode. The battery cells may also include a pseudo-reference electrode at least partially in contact with the electrolyte. The pseudo-reference electrode may be electrically isolated from the anode and the cathode.

Rechargeable battery with pseudo-reference electrode

Energy storage devices, battery cells, and rechargeable batteries of the present technology may include an anode and a cathode. The battery cells may include a separator positioned between the anode and the cathode. The battery cells may include an electrolyte incorporated with the anode and the cathode. The battery cells may also include a pseudo-reference electrode at least partially in contact with the electrolyte. The pseudo-reference electrode may be electrically isolated from the anode and the cathode.

BATTERY CELL, VEHICLE BATTERY, MOTOR VEHICLE AND METHOD FOR PRODUCING A CARRIER ELEMENT FOR AN ELECTRODE OF A BATTERY CELL
20220069314 · 2022-03-03 · ·

A battery cell with at least one electrode which has a carrier element and an active layer abutting the carrier element and with an electrode material for the alternating uptake and release of ions, the carrier element electrically connecting the active layer with an electric connecting pole of the battery cell, and having an electrically conductive surface for said exchanging of electrons with the electrode material of the active layer. The electrically conductive surface of the respective carrier element is provided by electrical conducting elements, the conducting elements being provided by fibers and/or granules and/or a slotted and/or perforated film and/or film strip and/or a wad.

BATTERY CELL, VEHICLE BATTERY, MOTOR VEHICLE AND METHOD FOR PRODUCING A CARRIER ELEMENT FOR AN ELECTRODE OF A BATTERY CELL
20220069314 · 2022-03-03 · ·

A battery cell with at least one electrode which has a carrier element and an active layer abutting the carrier element and with an electrode material for the alternating uptake and release of ions, the carrier element electrically connecting the active layer with an electric connecting pole of the battery cell, and having an electrically conductive surface for said exchanging of electrons with the electrode material of the active layer. The electrically conductive surface of the respective carrier element is provided by electrical conducting elements, the conducting elements being provided by fibers and/or granules and/or a slotted and/or perforated film and/or film strip and/or a wad.

TEMPLATE ELECTRODE STRUCTURES FOR DEPOSITING ACTIVE MATERIALS

Provided are examples of electrochemically active electrode materials, electrodes using such materials, and methods of manufacturing such electrodes. Electrochemically active electrode materials may include a high surface area template containing a metal silicide and a layer of high capacity active material deposited over the template. The template may serve as a mechanical support for the active material and/or an electrical conductor between the active material and, for example, a substrate. Due to the high surface area of the template, even a thin layer of the active material can provide sufficient active material loading and corresponding battery capacity. As such, a thickness of the layer may be maintained below the fracture threshold of the active material used and preserve its structural integrity during battery cycling.

TEMPLATE ELECTRODE STRUCTURES FOR DEPOSITING ACTIVE MATERIALS

Provided are examples of electrochemically active electrode materials, electrodes using such materials, and methods of manufacturing such electrodes. Electrochemically active electrode materials may include a high surface area template containing a metal silicide and a layer of high capacity active material deposited over the template. The template may serve as a mechanical support for the active material and/or an electrical conductor between the active material and, for example, a substrate. Due to the high surface area of the template, even a thin layer of the active material can provide sufficient active material loading and corresponding battery capacity. As such, a thickness of the layer may be maintained below the fracture threshold of the active material used and preserve its structural integrity during battery cycling.

ELECTRODE STRUCTURE INCLUDING ELECTRODE FIBER HAVING HIGHER DENSITY OF VERTICAL TOWS TO PARALLEL TOWS, FLOW BATTERY STACK INCLUDING THE SAME, AND SEALING STRUCTURE INCLUDING SEALING GASKETS CONNECTED BY SEALING WIRE

An electrode structure of a flow battery. A density of the vertical tow in the electrode fiber is larger than the density of the parallel tow. In the electrode fiber per unit volume, the quantity ratio of the vertical tow to the parallel tow is at least 6:4. The electrode structure includes an odd number of layers of the electrode fibers, and the porosity of other layers is larger than that of the center layer. The electrode structure includes the vertical tows, so that, the contact area between the outer surface of the electrode and the adjacent component is increased and the contact resistance is reduced; the electrode has good mechanical properties; the contact resistance of such structure is reduced by 30%-50%; and the layers of the electrode have different thickness depending on the porosity. After compression, the layers with optimized thickness have a consistent porosity.

ELECTRODE STRUCTURE INCLUDING ELECTRODE FIBER HAVING HIGHER DENSITY OF VERTICAL TOWS TO PARALLEL TOWS, FLOW BATTERY STACK INCLUDING THE SAME, AND SEALING STRUCTURE INCLUDING SEALING GASKETS CONNECTED BY SEALING WIRE

An electrode structure of a flow battery. A density of the vertical tow in the electrode fiber is larger than the density of the parallel tow. In the electrode fiber per unit volume, the quantity ratio of the vertical tow to the parallel tow is at least 6:4. The electrode structure includes an odd number of layers of the electrode fibers, and the porosity of other layers is larger than that of the center layer. The electrode structure includes the vertical tows, so that, the contact area between the outer surface of the electrode and the adjacent component is increased and the contact resistance is reduced; the electrode has good mechanical properties; the contact resistance of such structure is reduced by 30%-50%; and the layers of the electrode have different thickness depending on the porosity. After compression, the layers with optimized thickness have a consistent porosity.

SPLICED LITHIUM STRIP, PREPARATION METHOD THEREOF, AND RELATED NEGATIVE ELECTRODE PLATE, BATTERY CORE, LITHIUM ION BATTERY, BATTERY MODULE, BATTERY PACK AND APPARATUS

The present application provide a spliced lithium strip, preparation method thereof, and related negative electrode plate, battery core, lithium ion battery, battery module, battery pack and apparatus. The spliced lithium strip is formed by splicing two or more base lithium strips, wherein the base lithium strip has a thickness fluctuation of less than 5%; the spliced lithium strip has a spliced area and a non-spliced area alternately distributed along the splicing direction, and the spliced area has a maximum thickness H and the non-spliced area has a minimum thickness L, satisfying

[00001] .Math. H - L .Math. L × 1 0 0 % 6 % .

SPLICED LITHIUM STRIP, PREPARATION METHOD THEREOF, AND RELATED NEGATIVE ELECTRODE PLATE, BATTERY CORE, LITHIUM ION BATTERY, BATTERY MODULE, BATTERY PACK AND APPARATUS

The present application provide a spliced lithium strip, preparation method thereof, and related negative electrode plate, battery core, lithium ion battery, battery module, battery pack and apparatus. The spliced lithium strip is formed by splicing two or more base lithium strips, wherein the base lithium strip has a thickness fluctuation of less than 5%; the spliced lithium strip has a spliced area and a non-spliced area alternately distributed along the splicing direction, and the spliced area has a maximum thickness H and the non-spliced area has a minimum thickness L, satisfying

[00001] .Math. H - L .Math. L × 1 0 0 % 6 % .