Self-Activated Catalytic Sites on Nanoporous Dilute Alloy for High-Efficiency Electrochemical Hydrogen Evolution

Publication date

2021-03-23

Authors

Yu, Yaqian
Jiang, Kang
Luo, Min
Zhao, Yang
Lan, Jiao
Peng, Ming
de Groot, FrankISNI 0000000114483312
Tan, Yongwen

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

taverne

Abstract

Design and synthesis of effective electrocatalysts for hydrogen evolution reaction (HER) in wide pH environments are critical to reduce energy losses in water electrolyzers. Here, by using a self-activation strategy, we construct an atomic nickel (Ni) decorated nanoporous iridium (Ir) catalyst, which can create the reaction-favorable chemical environment and maximize the electrochemical active surface area (ECSA), enabling efficient HER over a wide pH range. By using operando X-ray absorption spectroscopy and theoretical calculations, the atomic Ni sites are identified as the synergistic sites, which not only accelerate the water dissociation under operation conditions but also activate the surface Ir sites thus leading to the efficient H2 generation. This work highlights the significance of atomic-level decorating strategy which can optimize the activity of surface Ir atoms with negligible sacrifice of the ECSA.

Keywords

atomic engineering, dealloying, hydrogen evolution reaction, nanoporous metal, operando X-ray absorption spectroscopy, synergistic effect, Taverne, General Materials Science, General Engineering, General Physics and Astronomy

Citation

Yu, Y, Jiang, K, Luo, M, Zhao, Y, Lan, J, Peng, M, De Groot, F M F & Tan, Y 2021, 'Self-Activated Catalytic Sites on Nanoporous Dilute Alloy for High-Efficiency Electrochemical Hydrogen Evolution', ACS Nano, vol. 15, no. 3, pp. 5333-5340. https://doi.org/10.1021/acsnano.0c10885