Investigate the electrical structure, optical character- characteristics, and phonon transport of the rock-salt (RS) CrTe monolayer using first-principles methods

Authors

  • Ali A. Nasser Department of Physics, College of Education for Pure Sciences, University of Basrah, Basrah, Iraq.
  • Jabbar M. AL-Zyadi Department of Physics, College of Education for Pure Sciences, University of Basrah, Basrah, Iraq.

Keywords:

DFT, CrTe, monolayer, magnetic moment, RS

Abstract

Density functional theory (DFT)-based first-principles computations are utilized to examine the phonon Boltzmann transport as well as the structural, electrical, and optical characteristics of the (RS) CrTe monolayer. The results demonstrated that the half-metal property is present in the (RS) CrTe monolayer. Whereas in the case of spin-up, the property of metal was achieved because the energy bands cut the level of Fermi, in the case of spin-down, because an energy gap emerged on both sides of the Fermi EF level, the semiconductor was produced. That is, there is a gap between the conduction band and the valence band, and the absolute magnitude of the sum of both gaps indicates to the (RS) CrTe monolayer total energy gap which has a value of 0.902 eV. The magnetic moment per cell unit of an (RS) CrTe monolayer is equivalent to 4μB. The (RS) CrTe monolayer has a strong polarization with a spin equal to 100% at the Fermi level due to the half-mineral. Our findings demonstrate the wide absorption spectrum of the (RS) CrTe monolayer, spanning visible light to the ultraviolet region, as well as its decreased convergent phonon scattering rate. These results could lead to more theoretical and experimental research on the CrTe monolayer's electrical structure, optical properties, and ability to conduct heat.

Downloads

References

R.A. de Groot, F.M. Mueller, P.G. van Engen, K.H.J. Buschow, Phys. Rev. Lett 50 (25), 2024 (1983).

J. H. Park, E. Vescovo, H. J. Kim, C. Kwon, R. Ramesh and T. Venkatesan, Nature 392, 794 (1998).

M. I. Katsnelson, V. Yu. Irkhin, L. Chioncel, A. I. Lichtenstein and R. A. de Groot, Rev. Mod. phys 80(2), 315(2008).

C.F.G.H. Fecher, and B. Balke, Angew. Chemie - Int. Ed 46(5), 688 (2007).

K. H. J. Buschow and P. G. van Engen, J. Magn. Magn. Mater 25(1), 90 (1981).

R. Y. Umetsu, K. Kobayashi, R. Kainuma, Y. Yamaguchi and K. Ohoyama, A. Sakuma, K. Ishida, J. Alloys Comp 499(1), 1 (2010).

G. Y. Gao and K. L. Yao, J. Appl. Phys 111(11), 113703 (2012).

K.S. Novoselov, A.K. Geim, S. V Morozov, D.A. Jiang, Y. Zhang, S. V Dubonos, I.V Grigorieva, and A.A. Firsov, Science 306(5696),666 (2004).

A.K. Geim, K.S. Novoselov, Nanosci. Technol. 11, 19 (2009).

H.R. Jappor, Phys. B. Condens. Matter 524, 109 (2017).

H.R. Jappor, J. Nanoelectron. Optoelectron 12, 742 (2017).

X. Chen, R. Meng, J. Jiang, Q. Liang, Q. Yang, C. Tan, X. Sun, S. Zhang, and T. Ren, Phys. Chem. Chem. Phys 18(24), 16302 (2016).

H.R. Jappor, and A.S. Jaber, Sens. Lett 14(10), 989 (2016).

H.R. Jappor, S.A.M. Khudair, Sens. Lett 15(5), 432 (2017).

X.W.Z. Cheng, K. Xu, H.K. Tsang, and J.-B. Xu, Nat. Photonics 7, 888 (2013).

K.R. Paton, E. Varrla, C. Backes, R.J. Smith, U. Khan, A. O’Neill, C. Boland, M. Lotya, O.M. Istrate, and P. King, Nat. Mater 13, 624 (2014).

G. E. Moore, Electronics 38, 8 (1965) .

M.M. Waldrop, Nature 530, 144 (2016).

J.M.K. Al-zyadi, G.Y. Gao, K.L. Yao, Thin Solid Films 531, 266 (2013).

J.M.K. Al-zyadi, R.M. Samuel, G.Y. Gao, K.L. Yao, J. Magn. Magn. Mater 346, 166 (2013).

J.M.K. Al-zyadi, N.H. Abdul-Wahhab, K.L. Yao, J. Magn. Magn. Mater 446, 221 (2018) .

G.Y. Gao, W. Yao, H.P. Han, J.M.K. Al-zyadi, K.L. Yao, J. Appl. Phys 112(10), 103709 (2012) .

S.J. Clark, M.D. Segall, C.J. Pickard, P.J. Hasnip, M.I. Probert, K. Refson, M.C. Payne. Z. Kristallogr. Cryst. Mater 220, 567 (2005).

J.P. Perdew, K. Burke, M. Ernzerhof, Phys. Rev. Lett 77(18), 3865 (1996).

Wang, J. Yu, J. Supercond. Nov. Magn 31, 2789 (2018).

PHONONS 2007: 12th International Conference on Phonon Scattering in Condensed Matter. 3 (2005) 140.

M. Gajdoš, K. Hummer, G. Kresse, J. Furthmüller, F. Bechstedt, Phys. Rev. B 73(4), 045112 (2006) .

G.Y. Guo, K.C. Chu, D.S. Wang, C.G. Duan, Phys. Rev. B 69(20), 205416 (2004) .

D.K. Sang, B. Wen, S. Gao, Y. Zeng, F. Meng, Z. Guo, and H. Zhang, Nanomaterials 9(8), 1075 (2019).

Downloads

Published

30-06-2023

How to Cite

Nasser, A. A., & AL-Zyadi, J. M. (2023). Investigate the electrical structure, optical character- characteristics, and phonon transport of the rock-salt (RS) CrTe monolayer using first-principles methods. Basrah Researches Sciences, 49(1), 57–65. Retrieved from https://jou.jobrs.edu.iq/index.php/home/article/view/34

Issue

Section

Articles