Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction
Transition metal dichalcogenides demonstrate fascinating capabilities for electrocatalytic H2 evolution, although the activities vary widely depending on nanomaterial sites available. Here, authors show the grain boundaries of atomically thin MoS2 to be especially active sites for H2 evolution.
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Nature Portfolio
2020
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oai:doaj.org-article:3249c976cba6438288515eb8d1f5fa3f2021-12-02T15:39:22ZEngineering grain boundaries at the 2D limit for the hydrogen evolution reaction10.1038/s41467-019-13631-22041-1723https://doaj.org/article/3249c976cba6438288515eb8d1f5fa3f2020-01-01T00:00:00Zhttps://doi.org/10.1038/s41467-019-13631-2https://doaj.org/toc/2041-1723Transition metal dichalcogenides demonstrate fascinating capabilities for electrocatalytic H2 evolution, although the activities vary widely depending on nanomaterial sites available. Here, authors show the grain boundaries of atomically thin MoS2 to be especially active sites for H2 evolution.Yongmin HePengyi TangZhili HuQiyuan HeChao ZhuLuqing WangQingsheng ZengPrafful GolaniGuanhui GaoWei FuZhiqi HuangCaitian GaoJuan XiaXingli WangXuewen WangChao ZhuQuentin M. RamasseAo ZhangBoxing AnYongzhe ZhangSara Martí-SánchezJoan Ramon MoranteLiang WangBeng Kang TayBoris I. YakobsonAchim TrampertHua ZhangMinghong WuQi Jie WangJordi ArbiolZheng LiuNature PortfolioarticleScienceQENNature Communications, Vol 11, Iss 1, Pp 1-12 (2020) |
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Science Q Yongmin He Pengyi Tang Zhili Hu Qiyuan He Chao Zhu Luqing Wang Qingsheng Zeng Prafful Golani Guanhui Gao Wei Fu Zhiqi Huang Caitian Gao Juan Xia Xingli Wang Xuewen Wang Chao Zhu Quentin M. Ramasse Ao Zhang Boxing An Yongzhe Zhang Sara Martí-Sánchez Joan Ramon Morante Liang Wang Beng Kang Tay Boris I. Yakobson Achim Trampert Hua Zhang Minghong Wu Qi Jie Wang Jordi Arbiol Zheng Liu Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction |
description |
Transition metal dichalcogenides demonstrate fascinating capabilities for electrocatalytic H2 evolution, although the activities vary widely depending on nanomaterial sites available. Here, authors show the grain boundaries of atomically thin MoS2 to be especially active sites for H2 evolution. |
format |
article |
author |
Yongmin He Pengyi Tang Zhili Hu Qiyuan He Chao Zhu Luqing Wang Qingsheng Zeng Prafful Golani Guanhui Gao Wei Fu Zhiqi Huang Caitian Gao Juan Xia Xingli Wang Xuewen Wang Chao Zhu Quentin M. Ramasse Ao Zhang Boxing An Yongzhe Zhang Sara Martí-Sánchez Joan Ramon Morante Liang Wang Beng Kang Tay Boris I. Yakobson Achim Trampert Hua Zhang Minghong Wu Qi Jie Wang Jordi Arbiol Zheng Liu |
author_facet |
Yongmin He Pengyi Tang Zhili Hu Qiyuan He Chao Zhu Luqing Wang Qingsheng Zeng Prafful Golani Guanhui Gao Wei Fu Zhiqi Huang Caitian Gao Juan Xia Xingli Wang Xuewen Wang Chao Zhu Quentin M. Ramasse Ao Zhang Boxing An Yongzhe Zhang Sara Martí-Sánchez Joan Ramon Morante Liang Wang Beng Kang Tay Boris I. Yakobson Achim Trampert Hua Zhang Minghong Wu Qi Jie Wang Jordi Arbiol Zheng Liu |
author_sort |
Yongmin He |
title |
Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction |
title_short |
Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction |
title_full |
Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction |
title_fullStr |
Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction |
title_full_unstemmed |
Engineering grain boundaries at the 2D limit for the hydrogen evolution reaction |
title_sort |
engineering grain boundaries at the 2d limit for the hydrogen evolution reaction |
publisher |
Nature Portfolio |
publishDate |
2020 |
url |
https://doaj.org/article/3249c976cba6438288515eb8d1f5fa3f |
work_keys_str_mv |
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