Zosiamliana R, Chettri B, Abdurakhmanov G, Ghimire M P, Rai D P
Department of Physics, Physical Sciences Research Center (PSRC), Pachhunga University College, Mizoram University Aizawl-796001 India
Department of Physics, Mizoram University Aizawl-796004 India.
RSC Adv. 2022 Apr 25;12(20):12453-12462. doi: 10.1039/d2ra01125e. eCollection 2022 Apr 22.
The structural, mechanical, electronic, optical and piezoelectric properties of NaSiO are studied under varying compressive unidirectional pressure (0-50 GPa with a difference of 10 GPa) using density functional theory (DFT). The calculated structural properties agree well with previously reported results. At 12 GPa, our calculation shows a structural phase transition from orthorhombic 2 to triclinic 1. The mechanical profile of NaSiO structures under different compressive unidirectional pressures are analysed by calculating the elastic moduli, Poisson's ratio and eigenvalues of stiffness matrix. Our study shows the mechanical stability of the system up to a pressure of 40 GPa. Herein, we have obtained an indirect band gap of 2.97 eV at 0 GPa. Between 0-50 GPa, the band gaps are within the range 2.62 to 3.46 eV. The system in our study possesses a wide band gap and high optical absorption in the UV-Vis range of electromagnetic radiation. The calculated static refractive indices (0) are close to unity suggesting its transparency. For piezoelectric properties, we have reported the total Cartesian polarization. Our calculations have revealed that NaSiO is a promising candidate for optoelectronic devices while its application in ferroelectric and piezoelectric devices could be improved with further research.
利用密度泛函理论(DFT),在不同的单向压缩压力(0 - 50 GPa,间隔为10 GPa)下研究了NaSiO的结构、力学、电子、光学和压电性能。计算得到的结构性能与先前报道的结果吻合良好。在12 GPa时,我们的计算表明结构从正交2相转变为三斜1相。通过计算弹性模量、泊松比和刚度矩阵的本征值,分析了不同单向压缩压力下NaSiO结构的力学特性。我们的研究表明,该系统在高达40 GPa的压力下具有力学稳定性。在此,我们在0 GPa时获得了2.97 eV的间接带隙。在0 - 50 GPa之间,带隙在2.62至3.46 eV范围内。我们研究中的系统具有宽带隙,并且在紫外 - 可见电磁辐射范围内具有高光学吸收。计算得到的静态折射率n(0)接近1,表明其具有透明性。对于压电性能,我们报道了总的笛卡尔极化。我们的计算表明,NaSiO是光电器件的一个有前景的候选材料,而其在铁电和压电器件中的应用有待进一步研究来改进。