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Synthesis of Ultrathin Metallic MTe 2 (M = V, Nb, Ta) Single‐Crystalline Nanoplates
Author(s) -
Li Jia,
Zhao Bei,
Chen Peng,
Wu Ruixia,
Li Bo,
Xia Qinglin,
Guo Guanghua,
Luo Jun,
Zang Ketao,
Zhang Zhengwei,
Ma Huifang,
Sun Guangzhuang,
Duan Xidong,
Duan Xiangfeng
Publication year - 2018
Publication title -
advanced materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 10.707
H-Index - 527
eISSN - 1521-4095
pISSN - 0935-9648
DOI - 10.1002/adma.201801043
Subject(s) - materials science , spintronics , telluride , monoclinic crystal system , transmission electron microscopy , magnetism , nanotechnology , scanning transmission electron microscopy , phase (matter) , ferromagnetism , paramagnetism , crystallography , condensed matter physics , crystal structure , chemistry , physics , organic chemistry , metallurgy
Two‐dimensional materials with intrinsic magnetism have recently drawn intense interest for both the fundamental studies and potential technological applications. However, the studies to date have been largely limited to mechanically exfoliated materials. Herein, an atmospheric pressure chemical vapor deposition route to ultrathin group VB metal telluride MTe 2 (M = V, Nb, Ta) nanoplates with thickness as thin as 3 nm is reported. It is shown that the resulting nanoplates can be systematically evolved from mostly thicker hexagonal domains to thinner triangular domains with an increasing flow rate of the carrier gas. X‐ray diffraction and transmission electron microscopy studies reveal MTe 2 (M = V, Nb, Ta) nanoplates are high‐quality single crystals. High‐resolution scanning transmission electron microscope imaging reveals the VTe 2 and NbTe 2 nanoplates adopt the hexagonal 1T phase and the TaTe 2 nanoplates show a monoclinic distorted 1T phase. Electronic transport studies show that MTe 2 single crystals exhibit metallic behavior. Magnetic measurements show that VTe 2 and NbTe 2 exhibit ferromagnetism and TaTe 2 shows paramagnetic behavior. The preparation of ultrathin few‐layered MTe 2 nanoplates will open up exciting opportunities for the burgeoning field of spintronics, sensors, and magneto‐optoelectronics.

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