C01G45/02

DEVICE FOR PROVIDING INSERTS AS SUPPORTING MESHES ON A TABLET MACHINE, AND A METHOD FOR PRODUCING A PELLET WHICH INCLUDES A SUPPORTING MESH
20210283877 · 2021-09-16 · ·

The invention relates to a device for providing supporting meshes for use as inserts in a pellet on a tablet machine, and a method for producing a pellet which includes an insert or supporting mesh.

DEVICE FOR PROVIDING INSERTS AS SUPPORTING MESHES ON A TABLET MACHINE, AND A METHOD FOR PRODUCING A PELLET WHICH INCLUDES A SUPPORTING MESH
20210283877 · 2021-09-16 · ·

The invention relates to a device for providing supporting meshes for use as inserts in a pellet on a tablet machine, and a method for producing a pellet which includes an insert or supporting mesh.

Nanowire catalysts and methods for their use and preparation

Nanowires useful as heterogeneous catalysts are provided. The nanowire catalysts are useful in a variety of catalytic reactions, for example, the oxidative coupling of methane to C2 hydrocarbons. Related methods for use and manufacture of the same are also disclosed.

Nanowire catalysts and methods for their use and preparation

Nanowires useful as heterogeneous catalysts are provided. The nanowire catalysts are useful in a variety of catalytic reactions, for example, the oxidative coupling of methane to C2 hydrocarbons. Related methods for use and manufacture of the same are also disclosed.

Member for gas sensor, having a metal oxide semiconductor tube wall with micropores and macropores, gas sensor, and method for manufacturing same

Disclosed are a gas sensor member, a gas sensor using the same, and manufacturing methods thereof, and specifically, a gas sensor member using a one-dimensional porous metal oxide nanotube composite material having a double average pore distribution in which mesopores (0.1 nm to 50 nm) and macropores (50 nm to 300 nm) are simultaneously formed on the surface of a nanotube through decomposition of a spherical polymer sacrificial template and continuous crystallization and diffusion of a metal oxide and a nanoparticle catalyst embedded in an apoferritin is uniformly loaded in the inside and on the outer wall and inner wall of a one-dimensional metal oxide nanotube through a high-temperature heat treatment, a gas sensor using the same, and manufacturing methods thereof are disclosed.

Member for gas sensor, having a metal oxide semiconductor tube wall with micropores and macropores, gas sensor, and method for manufacturing same

Disclosed are a gas sensor member, a gas sensor using the same, and manufacturing methods thereof, and specifically, a gas sensor member using a one-dimensional porous metal oxide nanotube composite material having a double average pore distribution in which mesopores (0.1 nm to 50 nm) and macropores (50 nm to 300 nm) are simultaneously formed on the surface of a nanotube through decomposition of a spherical polymer sacrificial template and continuous crystallization and diffusion of a metal oxide and a nanoparticle catalyst embedded in an apoferritin is uniformly loaded in the inside and on the outer wall and inner wall of a one-dimensional metal oxide nanotube through a high-temperature heat treatment, a gas sensor using the same, and manufacturing methods thereof are disclosed.

METHODS OF PRODUCING HYDROGEN-SELECTIVE OXYGEN CARRIER MATERIALS

Embodiments of the present disclosure are directed to methods of producing a hydrogen- selective oxygen carrier material comprising combining one or more core material precursors and one or more shell material precursors to from a precursor mixture and heat-treating the precursor mixture at a treatment temperature to form the hydrogen-selective oxygen carrier material. The treatment temperature is greater than or equal to 100° C. less than the melting point of a shell material, and the hydrogen- selective oxygen carrier material comprises a core comprising a core material and a shell comprising the shell material. The shell material may be in direct contact with at least a majority of an outer surface of the core material.

MANGANESE OXIDE COMPOSITION OF MATTER, AND SYNTHESIS AND USE THEREOF
20210253443 · 2021-08-19 ·

The present invention relates to a new synthetic manganese oxide material, a method of synthesis of the new manganese oxide material, and use of the new synthetic manganese oxide as a secondary battery active cathode material in an electrochemical application.

MANGANESE OXIDE COMPOSITION OF MATTER, AND SYNTHESIS AND USE THEREOF
20210253443 · 2021-08-19 ·

The present invention relates to a new synthetic manganese oxide material, a method of synthesis of the new manganese oxide material, and use of the new synthetic manganese oxide as a secondary battery active cathode material in an electrochemical application.

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.