Effect of compressive strain on electronic and optical properties of Cr-doped monolayer WS2

被引:1
|
作者
Mu, Yansong [1 ]
Liu, Guili [1 ]
Wei, Ran [1 ]
Zhang, Guoying [2 ]
机构
[1] Shenyang Univ Technol, Coll Architecture & Civil Engn, Shenyang, Peoples R China
[2] Shenyang Normal Univ, Sch Phys, Shenyang, Peoples R China
关键词
Compressive deformation; Doping; WS2; Electronic structure; Optical properties; MOSE2; VALLEY; SENSOR;
D O I
10.1007/s00894-024-05939-8
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Context The electronic properties and optical properties of Cr-doped monolayer WS2 under uniaxial compressive deformation have been investigated based on density functional theory. In terms of electronic structure properties, both intrinsic and doped system bandgaps decrease with the increase of compression deformation, and the values of the bandgap under the same compression deformation after Cr doping are reduced compared with the corresponding intrinsic states. When the compressive deformation reaches 10%, both the intrinsic and doped system band gaps are close to zero. New electronic states and impurity energy levels appear in the WS2 system when doped with Cr atoms. For the optical properties, the calculation and analysis of the dielectric function under each deformation regime of monolayer WS2 show that the compression deformation affects the dielectric function, and when the compression deformation is 10%, the un-doped and Cr-doped regimes show a decrease in epsilon(1)(omega) compared to the compression deformation of 8%. For each deformation system, the peak reflections occur in the ultraviolet region. Near the position where the second peak of the absorption spectrum appears, it can be seen that the ability of each system to absorb light gradually decreases with the increase of the amount of deformation and appears to be red-shifted to varying degrees. Methods This study follows the initial principles of the density functional theory framework and is based on the CASTEP module of Materials-Studio software GGA and PBE generalizations are used to perform computations such as geometry optimization of the model. We have calculated the energy band structure of monolayer WS2 with intrinsic and compressive deformations of 2% and 4% using PBE and HSE06, respectively. The band gap values calculated using PBE are 1.802 eV, 1.663 eV, and 1.353 eV, respectively, and the band gap values calculated with HSE06 are 2.267 eV, 2.034 eV, 1.751 eV. The results show that the bandgap values calculated by HSE06 are significantly higher than those calculated by PBE, but the bandgap variations calculated by the two methods have the same trend, and the shape characteristics of the energy band structure are also the same. However, it is worth noting that the computation time required for the HSE06 calculation is much longer than that of the PBE, which is far beyond the capability of our computer hardware, and the purpose of this paper is to investigate the change rule of the effect of deformation on the bandgap value, so to save the computational resources, the next calculations are all calculated using the PBE. The Monkhorst-Pack special K-point sampling method is used in the calculations. The cutoff energy for the plane wave expansion is 400 eV, and the K-point grid is assumed to be 5 x 5 x 1. Following geometric optimization, the iterative precision converges to a value of less than 0.03 eV/& Aring; for all atomic forces and at least 1 x 10(-5) eV/atom for the total energy of each atom. The vacuum layer's thickness was selected at 20 & Aring; to mitigate the impact of the interlayer contact force.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Disentangling the effects of doping, strain and disorder in monolayer WS2 by optical spectroscopy
    Kolesnichenko, Pavel V.
    Zhang, Qianhui
    Yun, Tinghe
    Zheng, Changxi
    Fuhrer, Michael S.
    Davis, Jeffrey A.
    2D MATERIALS, 2020, 7 (02):
  • [42] Low-energy bands and optical properties of monolayer WS2
    Do Muoi
    Hieu, Nguyen N.
    Van Thinh Pham
    Phuc, Huynh, V
    Nguyen, Chuong, V
    Bui, Hoi D.
    Le, P. T. T.
    OPTIK, 2020, 209
  • [43] Temperature dependence of optical properties of monolayer WS2 by spectroscopic ellipsometry
    Hoang Tung Nguyen
    Kim, Tae Jung
    Park, Han Gyeol
    Van Long Le
    Nguyen, Xuan Au
    Koo, Dohyoung
    Lee, Chul-Ho
    Cuong, Do Duc
    Hong, Soon Cheol
    Kim, Young Dong
    APPLIED SURFACE SCIENCE, 2020, 511
  • [44] The effects of vanadium absorbed by WS2 monolayer on the electronic, magnetic and optical properties: A first principle study
    Bishal, Ghazal
    Moradian, Rostam
    COMPUTATIONAL CONDENSED MATTER, 2019, 18
  • [45] Strain Relaxation of Monolayer WS2 on Plastic Substrate
    Zhang, Qianhui
    Chang, Zhenyue
    Xu, Guanzhong
    Wang, Ziyu
    Zhang, Yupeng
    Xu, Zai-Quan
    Chen, Shujian
    Bao, Qiaoliang
    Liu, Jefferson Zhe
    Mai, Yui-Wing
    Duan, Wenhui
    Fuhrer, Michael S.
    Zheng, Changxi
    ADVANCED FUNCTIONAL MATERIALS, 2016, 26 (47) : 8707 - 8714
  • [46] Strain-modulated magnetic behavior in Li-doped WS2 monolayer
    Luo, M.
    Yin, H. H.
    OPTIK, 2018, 157 : 827 - 832
  • [47] Valley-selective optical Stark effect in monolayer WS2
    Edbert J. Sie
    James W. McIver
    Yi-Hsien Lee
    Liang Fu
    Jing Kong
    Nuh Gedik
    Nature Materials, 2015, 14 : 290 - 294
  • [48] Valley-selective optical Stark effect in monolayer WS2
    Sie, Edbert J.
    McIver, JamesW.
    Lee, Yi-Hsien
    Fu, Liang
    Kong, Jing
    Gedik, Nuh
    NATURE MATERIALS, 2015, 14 (03) : 290 - 294
  • [49] Observation of Intervalley Biexcitonic Optical Stark Effect in Monolayer WS2
    Sie, Edbert J.
    Lui, Chun Hung
    Lee, Yi-Hsien
    Kong, Jing
    Gedik, Nuh
    NANO LETTERS, 2016, 16 (12) : 7421 - 7426
  • [50] Electronic, structural, and optical properties of the host and Cr-doped cadmium thioindate
    Tablero, C.
    JOURNAL OF APPLIED PHYSICS, 2012, 112 (09)