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Cited 42 time in webofscience Cited 41 time in scopus
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Two-dimensional carbon nitride C6N nanosheet with egg-comb-like structure and electronic properties of a semimetal

Authors
Bafekry, A.[Bafekry, A.]Shahrokhi, M.[Shahrokhi, M.]Shafique, A.[Shafique, A.]Jappor, H.R.[Jappor, H.R.]Shojaei, F.[Shojaei, F.]Feghhi, S.A.H.[Feghhi, S.A.H.]Ghergherehchi, M.[Ghergherehchi, M.]Gogova, D.[Gogova, D.]
Issue Date
21-May-2021
Publisher
IOP Publishing Ltd
Keywords
C6N monolayer; Dirac semi-metal; Electro-optical properties; Mechanical properties; Thermoelctric properties
Citation
Nanotechnology, v.32, no.21
Indexed
SCIE
SCOPUS
Journal Title
Nanotechnology
Volume
32
Number
21
URI
https://scholarworks.bwise.kr/skku/handle/2021.sw.skku/1606
DOI
10.1088/1361-6528/abd50c
ISSN
0957-4484
Abstract
In this study, the structural, electronic and optical properties of theoretically predicted C6N monolayer structure are investigated by means of Density Functional Theory-based First-Principles Calculations. Phonon band dispersion calculations and molecular dynamics simulations reveal the dynamical and thermal stability of the C6N single-layer structure. We found out that the C6N monolayer has large negative in-plane Poisson's ratios along both X and Y direction and the both values are almost four times that of the famous-pentagraphene. The electronic structure shows that C6N monolayer is a semi-metal and has a Dirac-point in the BZ. The optical analysis using the random phase approximation method constructed over HSE06 illustrates that the first peak of absorption coefficient of the C6N monolayer along all polarizations is located in the IR range of spectrum, while the second absorption peak occurs in the visible range, which suggests its potential applications in optical and electronic devices. Interestingly, optically anisotropic character of this system is highly desirable for the design of polarization-sensitive photodetectors. Thermoelectric properties such as Seebeck coefficient, electrical conductivity, electronic thermal conductivity and power factor are investigated as a function of carrier doping at temperatures 300, 400, and 500 K. In general, we predict that the C6N monolayer could be a new platform for study of novel physical properties in two-dimensional semi-metal materials, which may provide new opportunities to realize high-speed low-dissipation devices. © 2021 IOP Publishing Ltd Printed in the UK
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