Issue 32, 2022

Boosting the interfacial hydrogen migration for efficient alkaline hydrogen evolution on Pt-based nanowires

Abstract

The alkaline hydrogen evolution reaction (HER) on Pt-based catalysts is largely retarded by the insufficient supply of dissociated hydrogen (*H) on Pt sites. Hydrogen spillover offers a promising solution to deliver reactive *H; however, the hydrogen migration process generally suffers from thermodynamic/kinetic obstacles. Herein, we demonstrate that hydrogen spillover on binary PtNi nanowires can be thermodynamically and kinetically boosted by P-doping, resulting in a substantially improved alkaline HER. A combination of experimental and theoretical investigations suggests the dual roles of the incorporated P heteroatoms in facilitating the hydrogen spillover, involving the increased *H coverage by promoting the water dissociation and the accelerated hydrogen migration across the Pt–Ni interface to the Pt sites by lowering the kinetic barrier. Benefiting from the enhanced *H supply on the Pt sites, the P-doped PtNi nanowires exhibit impressive alkaline HER performance (η10 = 12 mV, mass activity = 5.8 A mgPt−1 at 70 mV), outperforming most other state-of-the-art HER electrocatalysts.

Graphical abstract: Boosting the interfacial hydrogen migration for efficient alkaline hydrogen evolution on Pt-based nanowires

Supplementary files

Article information

Article type
Paper
Submitted
28 Jun 2022
Accepted
19 Jul 2022
First published
20 Jul 2022

J. Mater. Chem. A, 2022,10, 16834-16841

Boosting the interfacial hydrogen migration for efficient alkaline hydrogen evolution on Pt-based nanowires

W. Lai, P. Yu, L. Gao, Z. Yang, B. He and H. Huang, J. Mater. Chem. A, 2022, 10, 16834 DOI: 10.1039/D2TA05156G

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