Computational study of the physical characteristics of Si-based oxide perovskites for energy generation using DFT
文献信息
Amjad Ali Pasha, Hukam Khan, Mohammad Sohail, Nasir Rahman, Rajwali Khan, Omar H. Alsalmi, Dilsora Abduvalieva, Khamael M. Abualnaja, Atef El Jery, Mouataz Adrdery
SiMO3 (M = Sn, Ge) silicon-based oxide perovskite compounds are studied using density functional theory (DFT) and Wien2k software to examine their structural, elastic, optical, and electronic properties. The Birch–Murnaghan equation is used to optimize SiSnO3 and SiGeO3 compounds and deliver structural stability, whereas the IRelast program is used to find elastic constants to confirm the flexible stability as well as the elastic behavior of the presented compounds. These compounds resist plastic strain and are ductile, scratch resistant, anisotropic, and mechanically stable. The Trans-Blaha modified Becke–Johnson potential approximation calculations demonstrate that the band structure of SiSnO3 is intermetallic, whereas the second compound, SiGeO3, is a semiconductor. The evidence obtained from the band structure and density of states of the these compounds demonstrates that SiSnO3 has an indirect band gap, and the minima of the conduction band are at evenness point X, whereas the maxima of the valence band are at symmetry points M, resulting in an indirect band gap (X–M). Meanwhile, SiGeO3 has a direct band gap, and the minima of the valence band and maxima of the conduction band occur at symmetry points X. These crystals have low-energy absorption. If we examine the reflectance of ternary molecules SiGeO3 has a low absorption of up to 2 eV with fluctuations and the absorption increases to a maximum value of 40.0 at 6.50 eV. In contrast, SiSnO3 exhibits a different increase, and the absorption coefficient decreases to the lowest value of 12.4 eV. Our optical property analysis showed that SiSnO3 and SiGeO3 can be used in high-frequency ultraviolet devices. To the best of our knowledge, this is the first DFT-based examination of the characteristics of these crystals.
相关文献
Terminal functional glycopolymersvia a combination of catalytic chain transfer polymerisation (CCTP) followed by three consecutive click reactions
Qiang Zhang, Stacy Slavin, Mathew W. Jones, Alice J. Haddleton, David M. Haddleton
DOI: 10.1039/C2PY20013A
An isoindigo and dithieno[3,2-b:2′,3′-d]silole copolymer for polymer solar cells
Romain Stalder, Caroline Grand, Jegadesan Subbiah, Franky So, John R. Reynolds
DOI: 10.1039/C1PY00402F
Facile glycosylation of dendrimers for eliciting specific cell–material interactions
Xiaopeng Liu, Jie Liu, Ying Luo
DOI: 10.1039/C1PY00404B
High molecular weight acrylonitrile–butadiene architectures via a combination of RAFT polymerization and orthogonal copper mediated azide–alkyne cycloaddition
Christoph J. Dürr, Sebastian G. J. Emmerling, Paul Lederhose, Andreas Kaiser, Sven Brandau, Michael Klimpel, Christopher Barner-Kowollik
DOI: 10.1039/C2PY00547F
Preparation and applications of novel fluoroalkyl end-capped oligomeric nanocomposites
Hideo Sawada
DOI: 10.1039/C1PY00325A
Two-dimensional copolymers with D–A type side chains for organic thin-film transistors: Synthesis and properties
Dugang Chen, Yan Zhao, Cheng Zhong, Gui Yu, Yunqi Liu, Jingui Qin
DOI: 10.1039/C1PY00331C
Individual graphene oxide platelets through direct molecular exfoliation with globular amphiphilic hyperbranched polymers
Shi-Min Shau, Tzong-Yuan Juang, Han-Sheng Lin, Cheng-Liang Huang, Chi-Fa Hsieh, Jeng-Yue Wu, Ru-Jong Jeng
DOI: 10.1039/C2PY00006G
Synthesis of low-temperature benzocyclobutene cross-linker and utilization
Julia N. Dobish, Sharon K. Hamilton, Eva Harth
DOI: 10.1039/C2PY00606E
Enzymatically degradable nanogels by inverse miniemulsion copolymerization of acrylamide with dextran methacrylates as crosslinkers
Daniel Klinger, Eugen M. Aschenbrenner, Clemens K. Weiss, Katharina Landfester
DOI: 10.1039/C1PY00415H
Hierarchical self-assembly and secondary structures of linear polypeptides graft onto POSS in the side chain through click chemistry
Yung-Chih Lin, Shiao-Wei Kuo
DOI: 10.1039/C1PY00381J
您可能还喜欢
4-((4-甲基哌嗪-1-基)甲基)苯硼酸(CAS号:763120-62-3)的市场或研究趋势如何?
随着有机硼化学的发展,该化合物在催化、药物合成、材料科学等领域展现出潜在的应用价值。近年来,其在药物前体合成中的应用越来越受到关注。市场趋势显示,随着科研投入的...
如何储存2,4,5-三甲基-1-硝基苯(CAS号:610-91-3)?
2,4,5-三甲基-1-硝基苯应储存在阴凉、干燥且通风良好的地方,避免阳光直射。储存在密封的金属容器中,远离火源和热源。储存温度应控制在25°C以下,湿度不宜过...
处理2,5-二碘噻吩(CAS号:625-88-7)时应注意哪些实验室安全事项?
在处理2,5-二碘噻吩时,应穿戴适当的个人防护装备(PPE),包括实验室外套、手套和防护眼镜。在通风橱中进行操作以避免吸入蒸气。如果发生泄漏,应立即疏散人员并使...
在合成中是否有6-bromo-3-chloro-1H-indole(CAS号:57916-08-2)的替代品?
在合成6-溴-3-氯-1H-吲哚(CAS号:57916-08-2)时,可以考虑使用一些类似的化合物作为替代品,如6-氯-3-氯-1H-吲哚或3-氯-1H-吲哚,...
在合成中是否有(R)-(-)-1-(1-萘基)乙基异氰酸酯(CAS号:42340-98-7)的替代品?
可以考虑使用类似结构的化合物,如1-[(1R)-1-(2-氨基乙基)萘-1-基]乙基异氰酸酯作为替代品。此外,还可以寻找其他类型的异氰酸酯衍生物,如苯基异氰酸酯...
3-氨基苯甲酰苯胺(CAS号:14315-16-3)适用哪些法规指南?
3-氨基苯甲酰苯胺适用于多项法规指南,包括但不限于GHS(全球化学品统一分类和标签制度)分类为皮肤腐蚀/刺激类别2,以及潜在的皮肤过敏性类别1。在欧盟地区,它受...
β-环柠檬醛-D5(CAS号:26309-95-5)通常如何合成?
β-环柠檬醛-D5可通过不对称合成方法获得。常见的合成路线包括以环己酮为原料,经过选择性氧化、还原、保护基引入等步骤,最终得到目标化合物。该合成过程中通常使用多...
如何处理含有BIO-1211(CAS号:187735-94-0)的废料?
对于含有BIO-1211(CAS号:187735-94-0)的废料,首先应进行分类收集,确保符合环保要求。然后,可以考虑通过焚烧或其他专业处理方法进行处置。在处...
如何处理含有4-氯-2-氟-3-甲基苯酚(CAS号:1351668-24-0)的废料?
含有该化合物的废液应收集至专用容器中,避免与其他化学品混合。可采用焚烧或送交专业废弃物处理公司处理。处理过程中需遵守当地环保法规,确保不产生二次污染。处理前应进...












![4-[(2-Oxo-1,2,3,4-tetrahydroquinolin-7-yl)oxy]butanoic acid structure 4-[(2-Oxo-1,2,3,4-tetrahydroquinolin-7-yl)oxy]butanoic acid structure](https://cnstatic.chemtradehub.com/structs/588/58899-27-7-1f86.webp)


