C25B9/65

METHOD FOR PREPARING COPPER AZIDE AND CUPROUS AZIDE ENCAPSULATED BY CONDUCTIVE METAL-ORGANIC FRAMEWORK

Provided is a method for preparing copper azide and cuprous azide encapsulated by conductive metal-organic framework. The method uses a conductive copper-containing metal-organic framework material as a precursor, and completes the azidation of the precursor by means of a liquid-solid electrochemical azidation reaction. Copper azide and cuprous azide nanocrystals are highly uniformly embedded within a conductive framework, which may effectively avoid the agglomeration of copper azide and cuprous azide, and reduce static charge generated by friction, displacement, and the like. Meanwhile, the conductive framework may promote the effective transfer of charge, avoid the accumulation of static charge, and improve the electrostatic safety. In addition, the liquid-solid electrochemical azidation reaction has advantages such as being safe and efficient, having a short reaction time and having strong operability, and the preparation process is compatible with a MEMS process, which is beneficial for the application of copper azide and cuprous azide materials in micro devices.

METHOD FOR PREPARING COPPER AZIDE AND CUPROUS AZIDE ENCAPSULATED BY CONDUCTIVE METAL-ORGANIC FRAMEWORK

Provided is a method for preparing copper azide and cuprous azide encapsulated by conductive metal-organic framework. The method uses a conductive copper-containing metal-organic framework material as a precursor, and completes the azidation of the precursor by means of a liquid-solid electrochemical azidation reaction. Copper azide and cuprous azide nanocrystals are highly uniformly embedded within a conductive framework, which may effectively avoid the agglomeration of copper azide and cuprous azide, and reduce static charge generated by friction, displacement, and the like. Meanwhile, the conductive framework may promote the effective transfer of charge, avoid the accumulation of static charge, and improve the electrostatic safety. In addition, the liquid-solid electrochemical azidation reaction has advantages such as being safe and efficient, having a short reaction time and having strong operability, and the preparation process is compatible with a MEMS process, which is beneficial for the application of copper azide and cuprous azide materials in micro devices.

ELECTROLYZER BIPOLAR PLATES AND POROUS GAS DIFFUSION LAYER HAVING AN OXIDATIVELY STABLE AND ELECTRICALLY CONDUCTIVE COATING AND METHOD OF MAKING THEREOF
20220396888 · 2022-12-15 ·

A proton exchange membrane (PEM) electrolyzer component selected from at least one of a bipolar plate or porous transport layer has an electrically conductive and oxidatively stable coating of an electrically conductive metal nitride or an electrically conductive metal oxide on at least one surface thereof.

ELECTROCHEMICAL PRODUCTION OF HYDROGEN FROM SEA WATER
20220389596 · 2022-12-08 ·

The invention relates to an apparatus for the electrochemical production of hydrogen gas from salt water, the apparatus comprising at least one cathode; at least one anode spaced apart from the cathode by a defined distance and connectors for electrically connecting the electrodes to a pulsating DC power supply; wherein the cathode comprises a paramagnetic material and the anode comprises a diamagnetic material. The invention also relates to an environmentally-friendly method for the production of hydrogen gas from sea water.

ELECTROCHEMICAL PRODUCTION OF HYDROGEN FROM SEA WATER
20220389596 · 2022-12-08 ·

The invention relates to an apparatus for the electrochemical production of hydrogen gas from salt water, the apparatus comprising at least one cathode; at least one anode spaced apart from the cathode by a defined distance and connectors for electrically connecting the electrodes to a pulsating DC power supply; wherein the cathode comprises a paramagnetic material and the anode comprises a diamagnetic material. The invention also relates to an environmentally-friendly method for the production of hydrogen gas from sea water.

ELECTROLYZER SYSTEM CONVERTER ARRANGEMENT
20220389595 · 2022-12-08 ·

Various examples are directed to a solar power electrolyzer system comprising a first electrolyzer stack, a second electrolyzer stack, a first converter and a first converter controller. The first electrolyzer stack may be electrically coupled in series with a photovoltaic array. The first converter may be electrically coupled in series with the first electrolyzer stack and electrically coupled in series with the photovoltaic array. The second electrolyzer stack electrically may be coupled at an output of the first converter. The first converter controller may be configured to control a current gain of the first converter.

ELECTROLYZER SYSTEM CONVERTER ARRANGEMENT
20220389595 · 2022-12-08 ·

Various examples are directed to a solar power electrolyzer system comprising a first electrolyzer stack, a second electrolyzer stack, a first converter and a first converter controller. The first electrolyzer stack may be electrically coupled in series with a photovoltaic array. The first converter may be electrically coupled in series with the first electrolyzer stack and electrically coupled in series with the photovoltaic array. The second electrolyzer stack electrically may be coupled at an output of the first converter. The first converter controller may be configured to control a current gain of the first converter.

Alloy member, cell stack, and cell stack device

An alloy member includes a base member that includes a plurality of recesses in a surface and is constituted by an alloy material containing chromium, a plurality of embedded portions that are respectively disposed in the plurality of recesses, and a coating layer that covers the base member and is connected to the plurality of embedded portions. An average value of actual lengths of line segments of the plurality of embedded portions is longer than an average value of straight lengths of straight lines of the plurality of embedded portions in a cross-section of the base member along a thickness direction of the base member. The average value of the actual lengths is 1.10 times or more the average value of the lengths of the straight lines.

ELASTIC MAT FOR ALKALINE WATER ELECTROLYSIS VESSEL
20220380915 · 2022-12-01 · ·

An elastic mat for an alkaline water electrolysis vessel includes: at least one wire net being woven or knitted with a metal wire and having spring elasticity in a thickness direction thereof, wherein the metal wire is a solid wire having a diameter of 0.16 to 0.29 mm, or a stranded wire including a plurality of solid wires each having a diameter of 0.08 to 0.15 mm, or any combination thereof.

ELASTIC MAT FOR ALKALINE WATER ELECTROLYSIS VESSEL
20220380915 · 2022-12-01 · ·

An elastic mat for an alkaline water electrolysis vessel includes: at least one wire net being woven or knitted with a metal wire and having spring elasticity in a thickness direction thereof, wherein the metal wire is a solid wire having a diameter of 0.16 to 0.29 mm, or a stranded wire including a plurality of solid wires each having a diameter of 0.08 to 0.15 mm, or any combination thereof.