Shi, J., Wang, X., Zhang, S., Xiao, L., Huan, Y., Gong, Y., Zhang, Z., Li, Y., Zhou, X., Hong, M., Fang, Q., Zhang, Q., Liu, X., Gu, L., Liu, Z., & Zhang, Y. (2017). Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst. Nature Communications, 8(1), Article 958. https://doi.org/10.1038/s41467-017-01089-z
Shi, Jianping ; Wang, Xina ; Zhang, Shuai et al. / Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst. In: Nature Communications. 2017 ; Vol. 8, No. 1.
@article{afc193e8ce2e4b80a4750e887a8281f5,
title = "Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst",
abstract = "Two-dimensional metallic transition metal dichalcogenides are emerging as prototypes for uncovering fundamental physical phenomena, such as superconductivity and charge-density waves, as well as for engineering-related applications. However, the batch production of such envisioned transition metal dichalcogenides remains challenging, which has hindered the aforementioned explorations. Herein, we fabricate thickness-tunable tantalum disulfide flakes and centimetre-sized ultrathin films on an electrode material of gold foil via a facile chemical vapour deposition route. Through temperature-dependent Raman characterization, we observe the transition from nearly commensurate to commensurate charge-density wave phases with our ultrathin tantalum disulfide flakes. We have obtained high hydrogen evolution reaction efficiency with the as-grown tantalum disulfide flakes directly synthesized on gold foils comparable to traditional platinum catalysts. This work could promote further efforts for exploring new efficient catalysts in the large materials family of metallic transition metal dichalcogenides, as well as exploiting their applications towards more versatile applications.",
author = "Jianping Shi and Xina Wang and Shuai Zhang and Lingfeng Xiao and Yahuan Huan and Yue Gong and Zhepeng Zhang and Yuanchang Li and Xiebo Zhou and Min Hong and Qiyi Fang and Qing Zhang and Xinfeng Liu and Lin Gu and Zhongfan Liu and Yanfeng Zhang",
note = "Publisher Copyright: {\textcopyright} 2017 The Author(s).",
year = "2017",
month = dec,
day = "1",
doi = "10.1038/s41467-017-01089-z",
language = "English",
volume = "8",
journal = "Nature Communications",
issn = "2041-1723",
publisher = "Nature Publishing Group",
number = "1",
}
Shi, J, Wang, X, Zhang, S, Xiao, L, Huan, Y, Gong, Y, Zhang, Z, Li, Y, Zhou, X, Hong, M, Fang, Q, Zhang, Q, Liu, X, Gu, L, Liu, Z & Zhang, Y 2017, 'Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst', Nature Communications, vol. 8, no. 1, 958. https://doi.org/10.1038/s41467-017-01089-z
Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst. / Shi, Jianping; Wang, Xina; Zhang, Shuai et al.
In:
Nature Communications, Vol. 8, No. 1, 958, 01.12.2017.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst
AU - Shi, Jianping
AU - Wang, Xina
AU - Zhang, Shuai
AU - Xiao, Lingfeng
AU - Huan, Yahuan
AU - Gong, Yue
AU - Zhang, Zhepeng
AU - Li, Yuanchang
AU - Zhou, Xiebo
AU - Hong, Min
AU - Fang, Qiyi
AU - Zhang, Qing
AU - Liu, Xinfeng
AU - Gu, Lin
AU - Liu, Zhongfan
AU - Zhang, Yanfeng
N1 - Publisher Copyright:
© 2017 The Author(s).
PY - 2017/12/1
Y1 - 2017/12/1
N2 - Two-dimensional metallic transition metal dichalcogenides are emerging as prototypes for uncovering fundamental physical phenomena, such as superconductivity and charge-density waves, as well as for engineering-related applications. However, the batch production of such envisioned transition metal dichalcogenides remains challenging, which has hindered the aforementioned explorations. Herein, we fabricate thickness-tunable tantalum disulfide flakes and centimetre-sized ultrathin films on an electrode material of gold foil via a facile chemical vapour deposition route. Through temperature-dependent Raman characterization, we observe the transition from nearly commensurate to commensurate charge-density wave phases with our ultrathin tantalum disulfide flakes. We have obtained high hydrogen evolution reaction efficiency with the as-grown tantalum disulfide flakes directly synthesized on gold foils comparable to traditional platinum catalysts. This work could promote further efforts for exploring new efficient catalysts in the large materials family of metallic transition metal dichalcogenides, as well as exploiting their applications towards more versatile applications.
AB - Two-dimensional metallic transition metal dichalcogenides are emerging as prototypes for uncovering fundamental physical phenomena, such as superconductivity and charge-density waves, as well as for engineering-related applications. However, the batch production of such envisioned transition metal dichalcogenides remains challenging, which has hindered the aforementioned explorations. Herein, we fabricate thickness-tunable tantalum disulfide flakes and centimetre-sized ultrathin films on an electrode material of gold foil via a facile chemical vapour deposition route. Through temperature-dependent Raman characterization, we observe the transition from nearly commensurate to commensurate charge-density wave phases with our ultrathin tantalum disulfide flakes. We have obtained high hydrogen evolution reaction efficiency with the as-grown tantalum disulfide flakes directly synthesized on gold foils comparable to traditional platinum catalysts. This work could promote further efforts for exploring new efficient catalysts in the large materials family of metallic transition metal dichalcogenides, as well as exploiting their applications towards more versatile applications.
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U2 - 10.1038/s41467-017-01089-z
DO - 10.1038/s41467-017-01089-z
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SN - 2041-1723
VL - 8
JO - Nature Communications
JF - Nature Communications
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Shi J, Wang X, Zhang S, Xiao L, Huan Y, Gong Y et al. Two-dimensional metallic tantalum disulfide as a hydrogen evolution catalyst. Nature Communications. 2017 Dec 1;8(1):958. doi: 10.1038/s41467-017-01089-z