Department of Physics, Begum Rokeya University, Rangpur, Rangpur, 5400, Bangladesh.
Department of Physics, University of Rajshahi, Rajshahi, 6400, Bangladesh.
Sci Rep. 2023 Jun 23;13(1):10246. doi: 10.1038/s41598-023-36875-x.
The cubic phase of CsNbO (CNO) perovskite has been hypothesized to investigate the elastic, electronic, photocatalytic, and optical properties for various technological applications using first-principles method. The pressure dependent structural stability has been confirmed from computed elastic constants. Relatively high value of elastic moduli, large hardness and toughness suggested that CNO would be applicable to design industrial machineries. The ductile to brittle transition is noticed at 20 GPa. The indirect bandgap of CNO proclaims its suitability for photovoltaic and IR photodetector applications. The total and partial density of states are calculated to show in evidence the contribution of individual atomic orbitals in the formation of bands. The pressure changes orbitals hybridization which can be substantiated by the change in the bandgap. Strong covalency of the Nb-O bond and antibonding character of Cs-O have been anticipated by the Mulliken population analysis and by the contour maps of electron charge density. The low carrier effective mass and high mobility carriers predict the good electrical conductivity of the material. The calculated values of conduction and valance band edge potential illustrate the excellent water-splitting and environmental pollutants degradation properties of CNO.
钙钛矿型 CsNbO(CNO)的立方相已被假设用于研究各种技术应用的弹性、电子、光催化和光学性质,使用第一性原理方法。通过计算弹性常数,证实了压力相关的结构稳定性。相对较高的弹性模量值、较大的硬度和韧性表明 CNO 将适用于设计工业机械。在 20 GPa 时注意到韧性到脆性的转变。CNO 的间接带隙宣布其适用于光伏和红外光电探测器应用。总态和部分态密度的计算表明,单个原子轨道在能带形成中的贡献。压力变化轨道杂化,这可以通过能带隙的变化来证实。通过 Mulliken 布居分析和电子电荷密度等高线图,可以预期 Nb-O 键的强共价性和 Cs-O 的反键性质。低载流子有效质量和高迁移率载流子预示着材料的良好电导率。传导带和价带边缘势的计算值说明了 CNO 具有优异的水分解和环境污染物降解性能。