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A highly active and stable hydrogen evolution catalyst based on pyrite-structured cobalt phosphosulfide.


ABSTRACT: Rational design and controlled synthesis of hybrid structures comprising multiple components with distinctive functionalities are an intriguing and challenging approach to materials development for important energy applications like electrocatalytic hydrogen production, where there is a great need for cost effective, active and durable catalyst materials to replace the precious platinum. Here we report a structure design and sequential synthesis of a highly active and stable hydrogen evolution electrocatalyst material based on pyrite-structured cobalt phosphosulfide nanoparticles grown on carbon nanotubes. The three synthetic steps in turn render electrical conductivity, catalytic activity and stability to the material. The hybrid material exhibits superior activity for hydrogen evolution, achieving current densities of 10?mA?cm(-2) and 100?mA?cm(-2) at overpotentials of 48?mV and 109?mV, respectively. Phosphorus substitution is crucial for the chemical stability and catalytic durability of the material, the molecular origins of which are uncovered by X-ray absorption spectroscopy and computational simulation.

SUBMITTER: Liu W 

PROVIDER: S-EPMC4762894 | biostudies-other | 2016

REPOSITORIES: biostudies-other

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A highly active and stable hydrogen evolution catalyst based on pyrite-structured cobalt phosphosulfide.

Liu Wen W   Hu Enyuan E   Jiang Hong H   Xiang Yingjie Y   Weng Zhe Z   Li Min M   Fan Qi Q   Yu Xiqian X   Altman Eric I EI   Wang Hailiang H  

Nature communications 20160219


Rational design and controlled synthesis of hybrid structures comprising multiple components with distinctive functionalities are an intriguing and challenging approach to materials development for important energy applications like electrocatalytic hydrogen production, where there is a great need for cost effective, active and durable catalyst materials to replace the precious platinum. Here we report a structure design and sequential synthesis of a highly active and stable hydrogen evolution e  ...[more]

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