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Why Oxygen Increases Carrier Lifetimes but Accelerates Degradation of CH_3NH_3PbI_3 under Light Irradiation: Time-Domain Ab Initio Analysis

机译:为什么氧气增加载体寿命,但加速在光照射下CH_3NH_3PBI_3的降解:时间域AB INITIO分析

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摘要

Exposure to oxygen and light undermines chemical stability of metal halide perovskites, while it surprisingly improves their optical properties. Focusing on CH_3NH_3PbI_3, we demonstrate that material degradation and charge carrier lifetimes depend strongly on the oxidation state of the oxygen species. Nonadiabatic molecular dynamics simulations combined with time-domain density functional theory show that a neutral oxygen molecule has little influence on the perovskite stability, while the superoxide and the peroxide accelerate degradation by breaking Pb-I chemical bonds and enhancing atomic fluctuations. Creating electron and/or hole traps, the neutral oxygen and the superoxide decrease charge carrier lifetimes by over 1 and 2 orders of magnitude, respectively. Importantly, photoinduced reduction of oxygen to the peroxide eliminates trap states and extends carrier lifetimes by more than a factor of 2 because it decreases the nonadiabatic coupling and shortens quantum coherence. The simulations indicate that the superoxide should be strongly avoided, for example, by full reduction to the peroxide because it causes simultaneous degradation of perovskite stability and optical properties. The detailed simulations rationalize the complex interplay between the influence of atmosphere and light on perovskite performance, apply to other solar cell materials exposed to natural elements, and provide valuable insights into design of high-performance solar cells.
机译:暴露于氧气和光线破坏金属卤化物钙酸盐的化学稳定性,而令人惊讶地改善了它们的光学性质。专注于CH_3NH_3PBI_3,我们证明了物质劣化和电荷载体寿命在氧气种类的氧化状态下依赖于强烈。结合时域密度函数理论的非抗体分子动力学模拟表明,中性氧分子对钙钛矿稳定性影响不大,而超氧化物和过氧化物通过破坏Pb-I化学键和增强原子波动而加速降解。创建电子和/或孔阱,中性氧和超氧化物分别将电荷载体寿命减小超过1和2个数量级。重要的是,光致氧对过氧化物的还原消除捕集状态,并且延伸载体寿命超过2倍,因为它降低了非气动耦合并缩短量子相干性。该模拟表明,例如,通过完全降低过氧化物,应强烈地避免超氧化物,因为它会同时降解钙钛矿稳定性和光学性质。详细仿真合理化了大气影响与钙钛矿性能的影响之间的复杂相互作用,适用于暴露于天然元素的其他太阳能电池材料,并为高性能太阳能电池设计提供有价值的见解。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第34期|14664-14673|共10页
  • 作者单位

    College of Chemistry Key Laboratory of Theoretical & Computational Photochemistry of Ministry of Education Beijing Normal University Beijing 100875 P. R. China;

    College of Chemistry Key Laboratory of Theoretical & Computational Photochemistry of Ministry of Education Beijing Normal University Beijing 100875 P. R. China;

    College of Chemistry Key Laboratory of Theoretical & Computational Photochemistry of Ministry of Education Beijing Normal University Beijing 100875 P. R. China;

    Department of Chemistry University of Southern California Los Angeles California 90089 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 22:16:49

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