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Research Article

Atomic Dispersion of Rh on Interconnected Mo2C Nanosheet Network Intimately Embedded in 3D NixMoOy Nanorod Arrays for pH-Universal Hydrogen Evolution

Thi Luu Luyen Doan1Dinh Chuong Nguyen2Patrick M. Bacirhonde1Ahmed S. Yasin3Abdelrahman I. Rezk1Nelson Y. Dzade4Cheol Sang Kim1,5,6( )Chan Hee Park1,5,6 ( )
Department of Bionanotechnology and Bioconvergence Engineering, Graduate School, Jeonbuk National University, Jeonju Jeollabuk-do 54896, Korea
Department of Nano Convergence Engineering, Jeonbuk National University, Jeonju Jeollabuk-do, Jeonbuk 54896, Korea
Graduate School of Energy Science and Technology, Chungnam National University, Daejeon 34134, Korea
Department of Energy and Mineral Engineering, The Pennsylvania State University, University Park State College, PA 16802, USA
Division of Mechanical Design Engineering, School of Engineering, Jeonbuk National University, Jeonju Jeollabuk-do 54896, Korea
Department of Bionanosystem Engineering, Graduate School, Jeonbuk National University, Jeonju Jeollabuk-do 54896, Korea
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Abstract

Herein, a simple synthetic approach is employed for the atomic dispersion of Rh atoms (Rh SAs) over the surface of interconnected Mo2C nanosheets intimately embedded in a three-dimensional NixMoOy nanorod arrays (NixMoOy NRs) framework; we found that the introduction of both isolated Rh SAs and NixMoOy NRs adjusts the electrocatalytic function of the host Mo2C toward the direction of being an advanced and highly stable electrocatalyst for efficient hydrogen evolution at pH-universal conditions. As a result, the proposed catalyst outperforms most recently reported transition metal-based catalysts, and its performance even rivals that of commercial Pt/C, as demonstrated by its ultralow overpotentials of 31.7, 109.7, and 95.4 mV at a current density of 10 mA cm−2, along with its small Tafel slopes of 42.4, 51.2, and 46.8 mV dec−1 in acidic, neutral, and alkaline conditions, respectively. In addition, the catalyst shows remarkable long-term stability over all pH values with good maintenance of its catalytic activity and structural characteristics after continuous operation.

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Cite this article:
Doan TLL, Nguyen DC, Bacirhonde PM, et al. Atomic Dispersion of Rh on Interconnected Mo2C Nanosheet Network Intimately Embedded in 3D NixMoOy Nanorod Arrays for pH-Universal Hydrogen Evolution. Energy & Environmental Materials, 2023, 6(5). https://doi.org/10.1002/eem2.12407

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Received: 25 January 2022
Revised: 24 March 2022
Published: 01 April 2022
© 2022 Zhengzhou University.