Two-dimensional antimonene single crystals grown by van der Waals epitaxy

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作者
Jianping Ji
Xiufeng Song
Jizi Liu
Zhong Yan
Chengxue Huo
Shengli Zhang
Meng Su
Lei Liao
Wenhui Wang
Zhenhua Ni
Yufeng Hao
Haibo Zeng
机构
[1] Institute of Optoelectronics & Nanomaterials,Department of Physics and Key Laboratory of Artificial Mircro
[2] Key Laboratory of Advanced Display Materials and Devices (Ministry of Industry and Information Technology), and Nano
[3] College of Materials Science and Engineering,structures of Ministry of Education
[4] Nanjing University of Science and Technology,Department of Physics
[5] Herbert Gleiter Institute of Nanoscience,Center for Integrated Science and Engineering & Department of Mechanical Engineering
[6] Nanjing University of Science and Technology,National Laboratory of Solid
[7] Wuhan University,State Microstructures and Department of Materials Science and Engineering
[8] Southeast University,undefined
[9] Columbia University,undefined
[10] Nanjing University,undefined
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摘要
Unlike the unstable black phosphorous, another two-dimensional group-VA material, antimonene, was recently predicted to exhibit good stability and remarkable physical properties. However, the synthesis of high-quality monolayer or few-layer antimonenes, sparsely reported, has greatly hindered the development of this new field. Here, we report the van der Waals epitaxy growth of few-layer antimonene monocrystalline polygons, their atomical microstructure and stability in ambient condition. The high-quality, few-layer antimonene monocrystalline polygons can be synthesized on various substrates, including flexible ones, via van der Waals epitaxy growth. Raman spectroscopy and transmission electron microscopy reveal that the obtained antimonene polygons have buckled rhombohedral atomic structure, consistent with the theoretically predicted most stable β-phase allotrope. The very high stability of antimonenes was observed after aging in air for 30 days. First-principle and molecular dynamics simulation results confirmed that compared with phosphorene, antimonene is less likely to be oxidized and possesses higher thermodynamic stability in oxygen atmosphere at room temperature. Moreover, antimonene polygons show high electrical conductivity up to 104 S m−1 and good optical transparency in the visible light range, promising in transparent conductive electrode applications.
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