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  5. Multiscale structural and electronic control of molybdenum disulfide foam for highly efficient hydrogen production

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Article
English
2017

Multiscale structural and electronic control of molybdenum disulfide foam for highly efficient hydrogen production

0 Datasets

0 Files

English
2017
Nature Communications
Vol 8 (1)
DOI: 10.1038/ncomms14430

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Konstantin ‘kostya’  Novoselov
Konstantin ‘kostya’ Novoselov

The University of Manchester

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Jiao Deng
Haobo Li
Su-Heng Wang
+8 more

Abstract

Hydrogen production through water splitting has been considered as a green, pure and high-efficient technique. As an important half-reaction involved, hydrogen evolution reaction is a complex electrochemical process involving liquid-solid-gas three-phase interface behaviour. Therefore, new concepts and strategies of material design are needed to smooth each pivotal step. Here we report a multiscale structural and electronic control of molybdenum disulfide foam to synergistically promote the hydrogen evolution process. The optimized three-dimensional molybdenum disulfide foam with uniform mesopores, vertically aligned two-dimensional layers and cobalt atoms doping demonstrated a high hydrogen evolution activity and stability. In addition, density functional theory calculations indicate that molybdenum disulfide with moderate cobalt doping content possesses the optimal activity. This study demonstrates the validity of multiscale control in molybdenum disulfide via overall consideration of the mass transport, and the accessibility, quantity and capability of active sites towards electrocatalytic hydrogen evolution, which may also be extended to other energy-related processes.

How to cite this publication

Jiao Deng, Haobo Li, Su-Heng Wang, Ding Ding, Mingshu Chen, Chuan Liu, Zhong‐Qun Tian, Konstantin ‘kostya’ Novoselov, Chao Ma, Dehui Deng, Xinhe Bao (2017). Multiscale structural and electronic control of molybdenum disulfide foam for highly efficient hydrogen production. Nature Communications, 8(1), DOI: 10.1038/ncomms14430.

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Publication Details

Type

Article

Year

2017

Authors

11

Datasets

0

Total Files

0

Language

English

Journal

Nature Communications

DOI

10.1038/ncomms14430

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