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卤化物钙钛矿 (CHNH)PbI 的压力诱导金属化。

Pressure-Induced Metallization of the Halide Perovskite (CHNH)PbI.

机构信息

Photon Science and Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory , Menlo Park, California 94025, United States.

出版信息

J Am Chem Soc. 2017 Mar 29;139(12):4330-4333. doi: 10.1021/jacs.7b01162. Epub 2017 Mar 16.

Abstract

We report the metallization of the hybrid perovskite semiconductor (MA)PbI (MA = CHNH) with no apparent structural transition. We tracked its bandgap evolution during compression in diamond-anvil cells using absorption spectroscopy and observed strong absorption over both visible and IR wavelengths at pressures above ca. 56 GPa, suggesting the imminent closure of its optical bandgap. The metallic character of (MA)PbI above 60 GPa was confirmed using both IR reflectivity and variable-temperature dc conductivity measurements. The impressive semiconductor properties of halide perovskites have recently been exploited in a multitude of optoelectronic applications. Meanwhile, the study of metallic properties in oxide perovskites has revealed diverse electronic phenomena. Importantly, the mild synthetic routes to halide perovskites and the templating effects of the organic cations allow for fine structural control of the inorganic lattice. Pressure-induced closure of the 1.6 eV bandgap in (MA)PbI demonstrates the promise of the continued study of halide perovskites under a range of thermodynamic conditions, toward realizing wholly new electronic properties.

摘要

我们报告了混合钙钛矿半导体(MA)PbI(MA = CHNH)的金属化,没有明显的结构转变。我们使用吸收光谱在金刚石压腔中跟踪其在压缩过程中的能带隙演化,发现在高于约 56 GPa 的压力下,在可见光和 IR 波长范围内有强烈的吸收,表明其光学带隙即将关闭。通过 IR 反射率和变温直流电导率测量证实了(MA)PbI 在 60 GPa 以上的金属性质。卤化物钙钛矿最近在多种光电应用中被开发出令人印象深刻的半导体性质。与此同时,对氧化物钙钛矿中金属性质的研究揭示了多种电子现象。重要的是,卤化物钙钛矿的温和合成路线和有机阳离子的模板效应允许对无机晶格进行精细的结构控制。(MA)PbI 的 1.6 eV 带隙在压力下的闭合证明了在一系列热力学条件下继续研究卤化物钙钛矿的前景,以期实现全新的电子性质。

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