Switch Volmer‐Heyrovsky to Volmer‐Tafel Pathway for Efficient Acidic Electrocatalytic Hydrogen Evolution by Correlating Pt Single Atoms with Clusters

Author:

Wang Junhui1ORCID,Zang Wenjie2,Liu Ximeng1,Sun Jianguo1,Xi Shibo3,Liu Weihao1,Kou Zongkui4,Shen Lei5ORCID,Wang John16

Affiliation:

1. Department of Materials Science and Engineering National University of Singapore Singapore 117574 Singapore

2. Department of Materials Science and Engineering University of California‐Irvine Irvine CA 92617 USA

3. Institute of Sustainability for Chemicals Energy and Environment (ISCE2) Agency for Science Technology and Research (A*STAR) 1 Pesek Road Jurong Island Singapore 627833 Singapore

4. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing Wuhan University of Technology Wuhan 430074 P. R. China

5. Department of Mechanical Engineering National University of Singapore Singapore 117575 Singapore

6. National University of Singapore (Chongqing) Research Institute Chongqing 401123 P. R. China

Abstract

AbstractAs cost‐effective catalysts, platinum (Pt) single‐atom catalysts (SACs) have attracted substantial attention. However, most studies indicate that Pt SACs in acidic hydrogen evolution reaction (HER) follow the slow Volmer‐Heyrovsky (VH) mechanism instead of the fast kinetic Volmer‐Tafel (VT) pathway. Here, this work propose that the VH mechanism in Pt SACs can be switched to the faster VT pathway for efficient HER by correlating Pt single atoms (SAs) with Pt clusters (Cs). Our calculations reveal that the correlation between Pt SAs and Cs significantly impacts the electronic structure of exposed Pt atoms, lowering the adsorption barrier for atomic hydrogen and enabling a faster VT mechanism. To validate these findings, this work purposely synthesize three catalysts: l‐Pt@MoS2, m‐Pt@MoS2 and h‐Pt@MoS2 with low, moderate, and high Pt‐loading, having different distributions of Pt SAs and Cs. The m‐Pt@MoS2 catalyst with properly correlating Pt SAs and Cs exhibits outstanding performance with an overpotential of 47 mV and Tafel slope of 32 mV dec−1. Further analysis of the Tafel values confirms that the m‐Pt@MoS2 sample indeed follows the VT reaction mechanism, aligning with the theoretical findings. This study offers a deep understanding of the synergistic mechanism, paving a way for designing novel‐advanced catalysts.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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