Issue 46, 2021

Accelerated hydrogen evolution reaction in Ni3P/MoP2/MoO2 tri-phase composites with rich crystalline interfaces and oxygen vacancies achieved by plasma assisted phosphorization

Abstract

A plasma assisted phosphorization method has been developed for preparation of multi-phase materials with rich crystalline interfaces and oxygen vacancies. Specifically, P-NiMoP nanorods (NRs) comprising tri-phases of MoP2, Ni3P and MoO2 have been synthesized by plasma-assisted phosphorization of NiMoO4 NRs. The specific features of the plasma technique provide P-NiMoP NRs with rich crystalline interfaces and oxygen vacancies in MoO2. P-NiMoP NRs are demonstrated to be a stable and efficient catalyst for the hydrogen evolution reaction (HER). They only need overpotentials of 3 and 162 mV to drive current densities of 10 and 150 mA cm−2, both of which are lower than those of Pt/C. The DFT calculations indicate that the tri-phase structure with rich crystalline interfaces and oxygen vacancies plays an important role in the high catalytic activity of P-NiMoP NRs. It promotes a strong electronic coupling between MoP2, Ni3P and MoO2, which facilitates H2O adsorption and dissociation and reduces the |ΔGH*| value.

Graphical abstract: Accelerated hydrogen evolution reaction in Ni3P/MoP2/MoO2 tri-phase composites with rich crystalline interfaces and oxygen vacancies achieved by plasma assisted phosphorization

Supplementary files

Article information

Article type
Communication
Submitted
29 Sep 2021
Accepted
05 Nov 2021
First published
05 Nov 2021

J. Mater. Chem. A, 2021,9, 25934-25943

Accelerated hydrogen evolution reaction in Ni3P/MoP2/MoO2 tri-phase composites with rich crystalline interfaces and oxygen vacancies achieved by plasma assisted phosphorization

B. Zhang, Z. Jiang, X. Shang, S. Li and Z. Jiang, J. Mater. Chem. A, 2021, 9, 25934 DOI: 10.1039/D1TA08457G

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