Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction

dc.contributor.author
He, Yongmin
dc.contributor.author
Tang, Pengyi
dc.contributor.author
Hu, Zhili
dc.contributor.author
He, Qiyuan
dc.contributor.author
Zhu, Chao
dc.contributor.author
Wang, Luqing
dc.contributor.author
Zeng, Qingsheng
dc.contributor.author
Golani, Prafful
dc.contributor.author
Gao, Guanhui
dc.contributor.author
Fu, Wei
dc.contributor.author
Huang, Zhiqi
dc.contributor.author
Gao, Caitian
dc.contributor.author
Xia, Juan
dc.contributor.author
Wang, Xingli
dc.contributor.author
Wang, Xuewen
dc.contributor.author
Ramasse, Quentin M.
dc.contributor.author
Zhang, Ao
dc.contributor.author
An, Boxing
dc.contributor.author
Zhang, Yongzhe
dc.contributor.author
Martí Sánchez, Sara
dc.contributor.author
Morante i Lleonart, Joan Ramon
dc.contributor.author
Wang, Liang
dc.contributor.author
Tay, Beng Kang
dc.contributor.author
Yakobson, Boris I.
dc.contributor.author
Trampert, Achim
dc.contributor.author
Zhang, Hua
dc.contributor.author
Wu, Minghong
dc.contributor.author
Wang, Qi Jie
dc.contributor.author
Arbiol i Cobos, Jordi
dc.contributor.author
Liu, Zheng
dc.date.issued
2021-07-05T08:21:37Z
dc.date.issued
2021-07-05T08:21:37Z
dc.date.issued
2020-01-02
dc.date.issued
2021-07-05T08:21:38Z
dc.identifier
2041-1723
dc.identifier
https://hdl.handle.net/2445/178779
dc.identifier
699857
dc.identifier
31896753
dc.description.abstract
Atom-thin transition metal dichalcogenides (TMDs) have emerged as fascinating materials and key structures for electrocatalysis. So far, their edges, dopant heteroatoms and defects have been intensively explored as active sites for the hydrogen evolution reaction (HER) to split water. However, grain boundaries (GBs), a key type of defects in TMDs, have been overlooked due to their low density and large structural variations. Here, we demonstrate the synthesis of wafer-size atom-thin TMD films with an ultra-high-density of GBs, up to ~1012 cm−2. We propose a climb and drive 0D/2D interaction to explain the underlying growth mechanism. The electrocatalytic activity of the nanograin film is comprehensively examined by micro-electrochemical measurements, showing an excellent hydrogen-evolution performance (onset potential: −25 mV and Tafel slope: 54 mV dec−1), thus indicating an intrinsically high activation of the TMD GBs.
dc.format
12 p.
dc.format
application/pdf
dc.language
eng
dc.publisher
Nature Publishing Group
dc.relation
Reproducció del document publicat a: https://doi.org/10.1038/s41467-019-13631-2
dc.relation
Nature Communications, 2020, vol. 11, num. 57
dc.relation
https://doi.org/10.1038/s41467-019-13631-2
dc.rights
cc-by (c) He, Yongmin et al., 2020
dc.rights
https://creativecommons.org/licenses/by/4.0/
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Enginyeria Electrònica i Biomèdica)
dc.subject
Electrocatàlisi
dc.subject
Materials
dc.subject
Electrocatalysis
dc.subject
Materials
dc.title
Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/publishedVersion


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