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Edge Epitaxy of Two-Dimensional MoSe2 and MoS2 Nanosheets on One-Dimensional Nanowires
Author(s) -
Junze Chen,
XueJun Wu,
Yue Gong,
Yihan Zhu,
Zhenzhong Yang,
Bing Li,
Qipeng Lu,
Yifu Yu,
Shikui Han,
Zhicheng Zhang,
Yun Zong,
Yu Han,
Lin Gu,
Hua Zhang
Publication year - 2017
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.7b03752
Subject(s) - nanowire , chemistry , epitaxy , enhanced data rates for gsm evolution , nanotechnology , crystallography , layer (electronics) , organic chemistry , telecommunications , materials science , computer science
Rational design and synthesis of heterostructures based on transition metal dichalcogenides (TMDs) have attracted increasing interests because of their promising applications in electronics, catalysis, etc. However, the construction of epitaxial heterostructures with an interface at the edges of TMD nanosheets (NSs) still remains a great challenge. Here, we report a strategy for controlled synthesis of a new type of heterostructure in which TMD NSs, including MoS 2 and MoSe 2 , vertically grow along the longitudinal direction of one-dimensional (1D) Cu 2-x S nanowires (NWs) in an epitaxial manner. The obtained Cu 2-x S-TMD heterostructures with tunable loading amount and lateral size of TMD NSs are achieved by the consecutive growth of TMD NSs on Cu 2-x S NWs through gradual injection of chalcogen precursors. After cation exchange of Cu in Cu 2-x S-TMD heterostructures with Cd, the obtained CdS-MoS 2 heterostructures retained their original architectures. Compared to the pure CdS NWs, the CdS-MoS 2 heterostructures with 7.7 wt % loading of MoS 2 NSs exhibit the best performance in the photocatalytic hydrogen evolution reaction with a H 2 production rate up to 4647 μmol·h -1 ·g -1 , about 58 times that catalyzed with pure CdS NWs. Our synthetic strategy opens up a new way for the controlled synthesis of TMD-based heterostructures, which could have various promising applications.

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