C23C10/36

COMPONENT WITH INTEGRATED NICKEL DIFFUSION LAYER

Component with a component (1) made of steel, wherein the component is at least partially coated with a nickel diffusion layer (10), and the layer thickness of the nickel diffusion layer (10) is 1-500 m and the nickel diffusion layer (10) has a nickel content, based on the total weight of the nickel diffusion layer, of 2 wt. % above the nickel content of the steel up to a maximum concentration, the nickel content in the nickel diffusion layer (10) increasing continuously in the direction of the surface (12) of the nickel diffusion layer (10) from 2% by weight up to the maximum concentration and the maximum concentration being 20-100% by weight.

Large-area copper nanofoam with hierarchical structure for use as electrode

A facile method is based on a pack-cementation process using large-area copper foil instead of copper powder. By controlling a pack-cementation time and an amount of alloying element (e.g., aluminum), a hierarchical microporous or nanoporous copper can be created. When coated with tin active material, the hierarchical microporous or nanoporous copper can be used as an advanced lithium-ion battery anode. A coin-cell test exhibited a four-fold higher areal capacity (e.g., 7.4 milliamp-hours per square centimeter without any performance degradation up to 20 cycles) as compared to a traditional graphite anode.

Large-area copper nanofoam with hierarchical structure for use as electrode

A facile method is based on a pack-cementation process using large-area copper foil instead of copper powder. By controlling a pack-cementation time and an amount of alloying element (e.g., aluminum), a hierarchical microporous or nanoporous copper can be created. When coated with tin active material, the hierarchical microporous or nanoporous copper can be used as an advanced lithium-ion battery anode. A coin-cell test exhibited a four-fold higher areal capacity (e.g., 7.4 milliamp-hours per square centimeter without any performance degradation up to 20 cycles) as compared to a traditional graphite anode.

Copper Nanofoam with Large Surface Area and Hierarchical Structure for Use as Electrode
20260121077 · 2026-04-30 ·

A facile method is based on a pack-cementation process using large-area copper foil instead of copper powder. By controlling a pack-cementation time and an amount of alloying element (e.g., aluminum), a hierarchical microporous or nanoporous copper can be created. When coated with tin active material, the hierarchical microporous or nanoporous copper can be used as an advanced lithium-ion battery anode. A coin-cell test exhibited a four-fold higher areal capacity (e.g., 7.4 milliamp-hours per square centimeter without any performance degradation up to 20 cycles) as compared to a traditional graphite anode.

Copper Nanofoam with Large Surface Area and Hierarchical Structure for Use as Electrode
20260121077 · 2026-04-30 ·

A facile method is based on a pack-cementation process using large-area copper foil instead of copper powder. By controlling a pack-cementation time and an amount of alloying element (e.g., aluminum), a hierarchical microporous or nanoporous copper can be created. When coated with tin active material, the hierarchical microporous or nanoporous copper can be used as an advanced lithium-ion battery anode. A coin-cell test exhibited a four-fold higher areal capacity (e.g., 7.4 milliamp-hours per square centimeter without any performance degradation up to 20 cycles) as compared to a traditional graphite anode.