H01M2004/024

ENHANCED ENZYME MEMBRANE FOR A WORKING ELECTRODE OF A CONTINUOUS BIOLOGICAL SENSOR
20190310220 · 2019-10-10 · ·

Briefly, a sensor for a continuous biological monitor is provided that has a working electrode with an enhanced enzyme layer that in one embodiment is made by mixing an aqueous polyurethane emulsion with an acrylic polyol emulsion to make a base emulsion. An enzyme is added to the base emulsion, which is applied to the working electrode and cured. Optionally, other additives can be added to the base emulsion prior to application, such as hydrophiles, cross linkers, adding imodeoesters, hydroxysuccimide, carboldilite, melamines, epoxies, benzoyl peroxide or dicumyl peroxide.

CARBON WORKING ELECTRODE FOR A CONTINUOUS BIOLOGICAL SENSOR
20190310222 · 2019-10-10 · ·

Briefly, a carbon working electrode is described that has a plastic substrate of polyethylene, polypropylene, polystyrene, polyvinyl chloride, or polylactic acid, and may be formed into an elongated wire. The carbon material coats the plastic substrate, and may be, for example, graphene, diamagnetic graphite, pyrolytic graphite, pyrolytic carbon, carbon black, carbon paste, or carbon ink, which is aqueously dispersed in an elastomeric material such as polyurethane, silicone, acrylates or acrylics. Optionally, selected additives may be added to the carbon compound prior to it being layered onto the plastic substrate. These additives may, for example, improve electrical conductivity or sensitivity, or act as a catalyst for target analyte molecules.

Metal-air battery

It is an object to provide a metal-air battery capable of, in particular, properly discharging produced gas externally, and performing rapid water supply. A metal-air battery according to the present invention is characterized by including a unit body including a plurality of metal-air battery cells; a water supply space provided on a top surface of the unit body and is common to the metal-air battery cells; and a wiring opening which communicably connects with the water supply space and from which wires connected to electrodes of the metal-air battery cells are drawn out. A tubular portion having the wiring opening projects from the top surface of the unit body.

Hybrid solid-state cell with a 3D porous cathode structure

An electrochemical cell is provided, which includes a cathode comprising a three dimensional (3D) porous cathode structure, an anode, an electrolyte separator, comprised of a ceramic material, located between the cathode and the anode, and a cathode current collector, wherein the cathode is located between the cathode current collector and the electrolyte separator. The 3D porous cathode structure includes ionically conducting electrolyte strands extending through the cathode from the cathode current collector to the electrolyte separator, pores extending through the cathode from the cathode current collector to the electrolyte separator, and an electronically conducting network extending on sidewall surfaces of the pores from the cathode current collector to the electrolyte separator.

Modular electrochemical cell and stack design

An electrochemical cell, electrochemical cell assembly and a method of assembling an electrochemical cell assembly. The cell includes a pair of current collectors that when joined together form a three-dimensional electrode assembly with an ion-exchange membrane disposed between the anode and cathode of the electrode assembly. The current collectors are sized and shaped such that a three-dimensional reactant chamber volume of one of the current collectors accepts nested placement of at least a portion of the three-dimensional reactant chamber volume of the other current collector. This design allows for easy and direct addition, removal or replacement of cells in a stack of such cells in a modular fashion. In addition, ease of mounting and unmounting of the cells on reactant manifolds promotes ease of assembly of two-dimensional or three-dimensional stack structures.

METAL-AIR BATTERY

It is an object to provide a metal-air battery capable of, in particular, properly discharging produced gas externally, and performing rapid water supply. A metal-air battery according to the present invention is characterized by including a unit body including a plurality of metal-air battery cells; a water supply space provided on a top surface of the unit body and is common to the metal-air battery cells; and a wiring opening which communicably connects with the water supply space and from which wires connected to electrodes of the metal-air battery cells are drawn out. A tubular portion having the wiring opening projects from the top surface of the unit body.

HYBRID SOLID-STATE CELL WITH A 3D POROUS CATHODE STRUCTURE
20240332633 · 2024-10-03 · ·

An electrochemical cell is provided, which includes a cathode comprising a three dimensional (3D) porous cathode structure, an anode, an electrolyte separator, comprised of a ceramic material, located between the cathode and the anode, and a cathode current collector, wherein the cathode is located between the cathode current collector and the electrolyte separator. The 3D porous cathode structure includes ionically conducting electrolyte strands extending through the cathode from the cathode current collector to the electrolyte separator, pores extending through the cathode from the cathode current collector to the electrolyte separator, and an electronically conducting network extending on sidewall surfaces of the pores from the cathode current collector to the electrolyte separator.

NOVEL MODULAR ELECTROCHEMICAL CELL AND STACK DESIGN

An electrochemical cell, electrochemical cell assembly and a method of assembling an electrochemical cell assembly. The cell includes a pair of current collectors that when joined together form a three-dimensional electrode assembly with an ion-exchange membrane disposed between the anode and cathode of the electrode assembly. The current collectors are sized and shaped such that a three-dimensional reactant chamber volume of one of the current collectors accepts nested placement of at least a portion of the three-dimensional reactant chamber volume of the other current collector. This design allows for easy and direct addition, removal or replacement of cells in a stack of such cells in a modular fashion. In addition, ease of mounting and unmounting of the cells on reactant manifolds promotes ease of assembly of two-dimensional or three-dimensional stack structures.

CONDUCTIVE SUBSTRATE FOR A WORKING ELECTRODE FOR A BIOLOGICAL SENSOR
20240341644 · 2024-10-17 · ·

A conductive substrate for a working electrode for a biological sensor includes a plastic substrate comprising an organic polymer or a thermoplastic. A carbon compound is on the plastic substrate. The carbon compound includes an elastomeric material and a carbon material from an aqueous solution. The carbon compound includes at least two materials from a group of carbon black, graphene, pyrolytic carbon, pyrolytic graphite, and diamagnetic graphite. The conductive substrate receives and transfers free electrons generated by an enzyme in the working electrode.

METAL-AIR BATTERY

It is an object to provide a metal-air battery capable of, in particular, properly discharging produced gas externally, and performing rapid water supply. A metal-air battery according to the present invention is characterized by including a unit body including a plurality of metal-air battery cells; a water supply space provided on a top surface of the unit body and is common to the metal-air battery cells; and a wiring opening which communicably connects with the water supply space and from which wires connected to electrodes of the metal-air battery cells are drawn out. A tubular portion having the wiring opening projects from the top surface of the unit body.