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Pressure-Induced Topological Nontrivial Phase and Tunable Optical Properties in All-Inorganic Halide Perovskites

机译:全无机卤化物钙钛矿中的压力诱导的拓扑非血液相和可调光学性质

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摘要

Cesium-based all-inorganic halide perovskites CsMX3 (M = Pb, Sn; X = Cl, Br, I) have been considered as important candidates for highly efficient, chemically stable optoelectronic devices and solar cells. Pressure can serve as an effective and clean thermodynamic approach to better performance of CsMX3. In this work, we use first-principles density functional theory calculations with both Perdew-Burke-Ernzerhof and GW + Bethe-Salpeter equation to systematically study the effects of pressure on the electronic structures, carrier transport, and optical properties of cubic phase CsMX3. Our results show that with increasing hydrostatic pressure, the optical band gap red-shifts until the pressure reaches a critical value, above which the band inversion is observed due to the spin-orbit coupling. The resulting nontrivial topological gap blue-shifts with further increasing pressure. This work provides insights into the rational design of experiments to engineer the properties of CsMX3 perovskites by applying pressure.
机译:基于铯的全无机卤化物Perovskites CSMX3(M = Pb,Sn; x = Cl,I)被认为是高效,化学稳定的光电器件和太阳能电池的重要候选者。压力可以用作更好的CSMX3的有效和清洁的热力学方法。在这项工作中,我们使用与两个Perdew-伯克Ernzerhof和GW +贝特 - 萨尔皮特方程第一原理密度泛函理论计算系统地研究的的电子结构的压力,载流子传输,和立方相CsMX3的光学特性的影响。我们的结果表明,随着静液压压力的增加,光学带隙红移直到压力达到临界值,上面由于旋转轨道耦合而观察到带反转的频带反转。由此产生的非增长拓扑间隙蓝移,进一步增加压力。这项工作为通过施加压力来设计实验的理性设计的见解,通过施加压力来设计CSMX3 Perovskites的性质。

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