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Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides

Transition-metal-doped tungsten semicarbide nanosheets (M-doped W(2)C NSs, M=Fe, Co, and Ni) have been synthesized through carburization of the mixture of tungsten trioxide, polyvinylpyrrolidone, and metal dopant. The nanosheets grow directly on the W mesh and have the lateral dimension of several h...

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Autores principales: Ang, Edison H., Dinh, Khang N., Sun, Xiaoli, Huang, Ying, Yang, Jun, Dong, Zhili, Dong, Xiaochen, Huang, Wei, Wang, Zhiguo, Zhang, Hua, Yan, Qingyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6750117/
https://www.ncbi.nlm.nih.gov/pubmed/31549061
http://dx.doi.org/10.34133/2019/4029516
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author Ang, Edison H.
Dinh, Khang N.
Sun, Xiaoli
Huang, Ying
Yang, Jun
Dong, Zhili
Dong, Xiaochen
Huang, Wei
Wang, Zhiguo
Zhang, Hua
Yan, Qingyu
author_facet Ang, Edison H.
Dinh, Khang N.
Sun, Xiaoli
Huang, Ying
Yang, Jun
Dong, Zhili
Dong, Xiaochen
Huang, Wei
Wang, Zhiguo
Zhang, Hua
Yan, Qingyu
author_sort Ang, Edison H.
collection PubMed
description Transition-metal-doped tungsten semicarbide nanosheets (M-doped W(2)C NSs, M=Fe, Co, and Ni) have been synthesized through carburization of the mixture of tungsten trioxide, polyvinylpyrrolidone, and metal dopant. The nanosheets grow directly on the W mesh and have the lateral dimension of several hundreds of nm to a few μm with a thickness of few tens nm. It is demonstrated that the M-doped W(2)C NSs exhibit superior electrocatalytic activity for hydrogen evolution reaction (HER). Impressively, the Ni-doped W(2)C NSs (2 at% Ni) with the optimized HER activity show extremely low onset overpotentials of 4, 9, and 19 mV and modest Tafel slopes of 39, 51, and 87 mV dec(−1) in acidic (pH=0), neutral (pH=7.2), and basic (pH=14) solutions, respectively, which is close to the commercial Pt/C catalyst. Density functional theory (DFT) calculations also demonstrate that the Gibbs free energy for H adsorption of Ni-W(2)C is much closer to the optimal value ∆G(H⁎) = -0.073 eV as compared to -0.16 eV of W(2)C. Furthermore, nearly 100% Faradaic efficiency and long-term stability are obtained in those environments. This realization of highly tolerant metal semicarbide catalyst performing on par with commercial Pt/C in all range of pH offers a key step towards industrially electrochemical water splitting.
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spelling pubmed-67501172019-09-23 Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides Ang, Edison H. Dinh, Khang N. Sun, Xiaoli Huang, Ying Yang, Jun Dong, Zhili Dong, Xiaochen Huang, Wei Wang, Zhiguo Zhang, Hua Yan, Qingyu Research (Wash D C) Research Article Transition-metal-doped tungsten semicarbide nanosheets (M-doped W(2)C NSs, M=Fe, Co, and Ni) have been synthesized through carburization of the mixture of tungsten trioxide, polyvinylpyrrolidone, and metal dopant. The nanosheets grow directly on the W mesh and have the lateral dimension of several hundreds of nm to a few μm with a thickness of few tens nm. It is demonstrated that the M-doped W(2)C NSs exhibit superior electrocatalytic activity for hydrogen evolution reaction (HER). Impressively, the Ni-doped W(2)C NSs (2 at% Ni) with the optimized HER activity show extremely low onset overpotentials of 4, 9, and 19 mV and modest Tafel slopes of 39, 51, and 87 mV dec(−1) in acidic (pH=0), neutral (pH=7.2), and basic (pH=14) solutions, respectively, which is close to the commercial Pt/C catalyst. Density functional theory (DFT) calculations also demonstrate that the Gibbs free energy for H adsorption of Ni-W(2)C is much closer to the optimal value ∆G(H⁎) = -0.073 eV as compared to -0.16 eV of W(2)C. Furthermore, nearly 100% Faradaic efficiency and long-term stability are obtained in those environments. This realization of highly tolerant metal semicarbide catalyst performing on par with commercial Pt/C in all range of pH offers a key step towards industrially electrochemical water splitting. AAAS 2019-05-02 /pmc/articles/PMC6750117/ /pubmed/31549061 http://dx.doi.org/10.34133/2019/4029516 Text en Copyright © 2019 Edison H. Ang et al. https://creativecommons.org/licenses/by/4.0/ Exclusive licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Ang, Edison H.
Dinh, Khang N.
Sun, Xiaoli
Huang, Ying
Yang, Jun
Dong, Zhili
Dong, Xiaochen
Huang, Wei
Wang, Zhiguo
Zhang, Hua
Yan, Qingyu
Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides
title Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides
title_full Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides
title_fullStr Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides
title_full_unstemmed Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides
title_short Highly Efficient and Stable Hydrogen Production in All pH Range by Two-Dimensional Structured Metal-Doped Tungsten Semicarbides
title_sort highly efficient and stable hydrogen production in all ph range by two-dimensional structured metal-doped tungsten semicarbides
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6750117/
https://www.ncbi.nlm.nih.gov/pubmed/31549061
http://dx.doi.org/10.34133/2019/4029516
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