Tunable optoelectronic, thermoelectric, and photocatalytic properties of β-SiTe and SiH monolayers as a photocatalytic water-splitting

被引:30
|
作者
Essaa, Shaimaa Amer [1 ]
Jappor, Hamad Rahman [1 ]
机构
[1] Univ Babylon, Coll Educ Pure Sci, Dept Phys, Hilla, Iraq
关键词
beta-SiTe and SiH; 2D materials; Photocatalytic water splitting; Electronic and optical properties; Thermoelectric properties; HIGH-EFFICIENCY PHOTOCATALYST; II HETEROSTRUCTURE;
D O I
10.1007/s11082-024-07036-9
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
One of the most interesting study areas in the renewable energy production is highly efficient water splitting that relies on the solar energy. More promising photocatalysts which can operate under irradiation from visible light are vitally required. Herein, based on the density functional theory, we demonstrated that two-dimensional SiH and beta-SiTe monolayers exhibit indirect bandgap and suitable band edge locations for photocatalytic splitting of water. Using the PBE approach, we found that the bandgap values for the SiH and beta-SiTe monolayer are 2.19 eV and 1.86 eV, respectively. The rectified bandgaps using the HSE06 function for SiH and beta-SiTe were 2.93 eV and 2.43 eV, respectively. Surprisingly, photocatalytic property studies demonstrated that SiH and beta-SiTe monolayers act as efficient photocatalysts for the production of hydrogen. Our outcomes emphasized that the highest peak of the absorption coefficient of SiH monolayer is 17.1 x 104 cm-1 in the UV region specifically at energy 7.90 eV. While beta-SiTe monolayer has two peaks absorption of (13.5 x 104 and 8.1 x 104) cm-1 in the UV region at energies (7.18 and 9.22) eV. The results presented here imply that the SiH and beta-SiTe could be useful in thermoelectric applications and the construction of photovoltaic cells and catalysts.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Optoelectronic and photocatalytic properties of GaN, GeS and SiS monolayers and their vdW heterostructures
    Abid, Aqsa
    Haneef, Muhammad
    Ali, Sajjad
    Dahshan, A.
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2022, 161
  • [22] Photocatalytic water splitting
    Shunta Nishioka
    Frank E. Osterloh
    Xinchen Wang
    Thomas E. Mallouk
    Kazuhiko Maeda
    Nature Reviews Methods Primers, 3
  • [23] PHOTOCATALYTIC SPLITTING OF WATER
    KATAKIS, DF
    MITSOPOULOU, C
    KONSTANTATOS, J
    VRACHNOU, E
    FALARAS, P
    JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 1992, 68 (03) : 375 - 388
  • [24] Photocatalytic water splitting
    Nishioka, Shunta
    Osterloh, Frank E.
    Wang, Xinchen
    Mallouk, Thomas E.
    Maeda, Kazuhiko
    NATURE REVIEWS METHODS PRIMERS, 2023, 3 (01):
  • [25] 2D materials and heterostructures for photocatalytic water-splitting: a theoretical perspective
    Wang, Guangzhao
    Chang, Junli
    Tang, Wenyi
    Xie, Wenjie
    Ang, Yee Sin
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2022, 55 (29)
  • [26] Tuning the photocatalytic water-splitting performance with the adjustment of diameter in an armchair WSSe nanotube
    Ju, Lin
    Liu, Penglan
    Yang, Yifan
    Shi, Liran
    Yang, Gui
    Sun, Li
    JOURNAL OF ENERGY CHEMISTRY, 2021, 61 : 228 - 235
  • [27] Tuning the photocatalytic water-splitting performance with the adjustment of diameter in an armchair WSSe nanotube
    Lin Ju
    Penglan Liu
    Yifan Yang
    Liran Shi
    Gui Yang
    Li Sun
    Journal of Energy Chemistry, 2021, 61 (10) : 228 - 235
  • [28] Effects of intrinsic defects on the photocatalytic water-splitting activities of PtSe2
    Yong, Xin
    Zhang, Jianqi
    Ma, Xiangchao
    International Journal of Hydrogen Energy, 2021, 45 (15) : 8549 - 8557
  • [29] Effects of intrinsic defects on the photocatalytic water-splitting activities of PtSe2
    Yong, Xin
    Zhang, Jianqi
    Ma, Xiangchao
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (15) : 8549 - 8557
  • [30] A first-principles investigation of Janus MoSSe as a catalyst for photocatalytic water-splitting
    Lei, Xueling
    Ouyang, Chuying
    Huang, Kevin
    APPLIED SURFACE SCIENCE, 2021, 537