Ultra-Thin Znse: Anisotropic and Flexible Crystal Structure
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Open Access Color
BRONZE
Green Open Access
Yes
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2
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2
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No
Abstract
By performing density functional theory-based calculations, we investigate the structural, electronic, and mechanical properties of the thinnest ever ZnSe crystal [11]. The vibrational spectrum analysis reveals that the monolayer ZnSe is dynamically stable and has flexible nature with its soft phonon modes. In addition, a direct electronic band gap is found at the gamma point for the monolayer structure of ZnSe. We also elucidate that the monolayer ZnSe has angle dependent in-plane elastic parameters. In particular, the in-plane stiffness values are found to be 2.07 and 6.89 N/m for the arm-chair and zig-zag directions, respectively. The angle dependency is also valid for the Poisson ratio of the monolayer ZnSe. More significantly, the in-plane stiffness of the monolayer ZnSe is the one-tenth of Young modulus of bulk zb-ZnSe which indicates that the monolayer ZnSe is a quite flexible single layer crystal. With its flexible nature and in-plane anisotropic mechanical properties, the monolayer ZnSe is a good candidate for nanoscale mechanical applications.
Description
Keywords
Crystal structure, Density functional theory, Monolayer structures, Crystal structure, Monolayer structures, Density functional theory
Fields of Science
0301 basic medicine, 03 medical and health sciences, 01 natural sciences, 0104 chemical sciences
Citation
Bacaksız, C., Senger, R. T., and Şahin, H. (2017). Ultra-thin ZnSe: Anisotropic and flexible crystal structure. Applied Surface Science, 409, 426-430. doi:10.1016/j.apsusc.2017.03.039
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OpenCitations Citation Count
10
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Volume
409
Issue
Start Page
426
End Page
430
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CrossRef : 6
Scopus : 12
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