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High Compression-Induced Conductivity in a Layered Cu-Br Perovskite

机译:层状Cu-Br Perovskite中的高压缩诱导的电导率

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We show that the onset pressure for appreciable conductivity in layered copper-halide perovskites can decrease by ca. 50 GPa upon replacement of Cl with Br. Layered Cu-Cl perovskites require pressures >50 GPa to show a conductivity of 10(-4) S cm(-1), whereas here a Cu-Br congener, (EA)(2)CuBr4 (EA=ethylammonium), exhibits conductivity as high as 2x10(-3) S cm(-1) at only 2.6 GPa, and 0.17 S cm(-1) at 59 GPa. Substitution of higher-energy Br 4p for Cl 3p orbitals lowers the charge-transfer band gap of the perovskite by 0.9 eV. This 1.7 eV band gap decreases to 0.3 eV at 65 GPa. High-pressure X-ray diffraction, optical absorption, and transport measurements, and density functional theory calculations allow us to track compression-induced structural and electronic changes. The notable enhancement of the Br perovskite's electronic response to pressure may be attributed to more diffuse Br valence orbitals relative to Cl orbitals. This work brings the compression-induced conductivity of Cu-halide perovskites to more technologically accessible pressures.
机译:我们表明,分层铜卤化物钙酸盐中可观导电性的发病压力可以通过CA降低。用BR替换CL时50 GPA。分层Cu-Cl钙酸盐需要压力> 50GPa以显示10(-4)厘米(-1)的电导率,而这里是Cu-Br Congener,(EA)(2)立方体(EA =乙基铵),表现出导电性高至2×10(-3)厘米(-1),仅为2.6GPa,0.17厘米(-1),59gPa。用于Cl 3P轨道的高能量BR 4P的替换将钙钛矿的电荷转移带隙降低0.9eV。该1.7 EV带隙在65GPa下降至0.3eV。高压X射线衍射,光学吸收和运输测量,密度函数理论计算允许我们跟踪压缩引起的结构和电子变化。 BR PEROVSKITE对压力的电子响应的显着增强可以归因于相对于CL轨道的更多漫射BR价轨道。这项工作使Cu-Halide Perovskites的压缩诱导导电能力更加技术可接近的压力。

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