Joshi Radha K, Bhandari Shalika R, Ghimire Madhav Prasad
Central Department of Physics, Tribhuvan University Kathmandu Nepal
Condensed Matter Physics Research Center (CMPRC) Butwal Rupandehi Nepal.
RSC Adv. 2022 Aug 25;12(37):24156-24162. doi: 10.1039/d2ra03859e. eCollection 2022 Aug 22.
Layered perovskites are an interesting class of materials due to their possible applications in microelectronics and optoelectronics. Here, by means of density functional theory calculations, we investigated the structural, elastic, electronic, optical, and thermoelectric properties of the layered perovskite BiLaOI within the parametrization of the standard generalized gradient approximation (GGA). The transport coefficients were evaluated by adopting Boltzmann semi-classical theory and a collision time approach. The calculated elastic constants were found to satisfy the Born criteria, indicating that BiLaOI is mechanically stable. Taking into account spin-orbit coupling (SOC), the material was found to be a non-magnetic insulator, with an energy bandgap of 0.82 eV (within GGA+SOC), and 1.85 eV (within GGA+mBJ+SOC). The optical-property calculations showed this material to be optically active in the visible and ultraviolet regions, and that it may be a candidate for use in optoelectronic devices. Furthermore, this material is predicted to be a potential candidate for use in thermoelectric devices due to its large value of power factor, ranging from 2811 to 7326 μW m K, corresponding to a temperature range of 300 K to 800 K.
层状钙钛矿由于其在微电子和光电子学中的潜在应用而成为一类有趣的材料。在此,通过密度泛函理论计算,我们在标准广义梯度近似(GGA)的参数化范围内研究了层状钙钛矿BiLaOI的结构、弹性、电子、光学和热电性质。采用玻尔兹曼半经典理论和碰撞时间方法评估了输运系数。计算得到的弹性常数满足玻恩准则,表明BiLaOI在力学上是稳定的。考虑自旋轨道耦合(SOC)后,发现该材料是一种非磁性绝缘体,其能带隙在GGA+SOC下为0.82 eV,在GGA+mBJ+SOC下为1.85 eV。光学性质计算表明,该材料在可见光和紫外区域具有光学活性,可能是光电器件的候选材料。此外,由于其较大的功率因数,在300 K至800 K的温度范围内为2811至7326 μW m K,预计该材料是热电装置的潜在候选材料。