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Intercalation-Induced Disintegrated Layer-By-Layer Growth of Ultrathin Ternary Mo(Te1–xSx)2 Plates
Author(s) -
Yuzhe Yang,
Jing Shang,
Han Gao,
Qiang Sun,
Liangzhi Kou,
ZhiGang Chen,
Jin Zou
Publication year - 2020
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/acsami.0c07342
Subject(s) - materials science , ternary operation , layer (electronics) , intercalation (chemistry) , crystallography , nanotechnology , condensed matter physics , inorganic chemistry , physics , chemistry , computer science , programming language
Nanometer-thick transition-metal dichalcogenides (TMDs) have attracted increasing research interest because of their exotic physical properties, but their high-yield and large-scale synthesis remains a challenge for their practical device applications. In this study, we realize the high-yield synthesis of nanometer-thick single-crystalline Mo(Te 1- x S x ) 2 plates by a facile chemical vapor deposition method. Adding S powders in the precursors can result in the products varying from well-faceted MoTe 2 hexagonal plates to irregular Mo(Te 1- x S x ) 2 plates with randomly stacked nanometer-thick layer steps. Moreover, their lateral dimension increases from several μm for binary MoTe 2 o several tens of μm for ternary Mo(Te 1- x S x ) 2 . More interestingly, such irregular Mo(Te 1- x S x ) 2 plates can form few layers by ultrasonic exfoliation. Our detailed electron microscopy analyses show that three kinds of S forms influence the ternary growth. In particular, elemental S 8 intercalations play an important role in the growth and exfoliation of ultrathin Mo(Te 1- x S x ) 2 plates. This study enriches the fundamental understanding of zero-valent intercalation in TMDs and provides a new insight into secure high-yield nanometer-thick TMDs, which is critical for practical applications.

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