Nonradiative Recombination of Excitons in Periodic Solids: A Case Study of Dion-Jacobson Lead-Halide Perovskite.

IF 4.8 2区 化学 Q2 CHEMISTRY, PHYSICAL
Aaron Forde, Carlos MoraPerez, Nikhil Singh, Dibyajyoti Ghosh, Amanda J Neukirch, Sergei Tretiak
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Abstract

Nonadiabatic dynamics describe the nonradiative relaxation of excited states in semiconducting materials which determine the efficiency of optoelectronic devices. Due to the computational complexity of modeling the coupled electronic-nuclear dynamics approximations are required. In the solid state a common approximation is the independent orbital approximation (IOA) as the electronic basis for surface-hopping trajectories describing nuclear dynamics. We examine the impact of the IOA on the computed nonradiative lifetimes in nanostructured Dion-Jacobson lead-halide perovskite. Specifically, we compute the nonadiabatic couplings between the excited states and the ground state using either IOA or many-body states to propagate the surface-hopping trajectories. Many-body corrections renormalize the nonadiabatic couplings compared to the IOA resulting in a 50% increase in the time-averaged coupling strength. However, when including decoherence corrections the differences in the computed recombination lifetimes reduce significantly. This result suggests that the IOA serves as an efficient approximation for prediction of nonradiative lifetimes in strongly confined nanomaterials.

周期性固体中激子的非辐射复合:以Dion-Jacobson铅卤化钙钛矿为例。
非绝热动力学描述了半导体材料中激发态的非辐射松弛,它决定了光电器件的效率。由于建模的计算复杂性,需要采用耦合的电子-核动力学近似。在固体中,常用的近似是独立轨道近似(IOA)作为描述核动力学的表面跳跃轨迹的电子基础。我们研究了IOA对纳米结构Dion-Jacobson卤化铅钙钛矿计算的非辐射寿命的影响。具体来说,我们计算了激发态和基态之间的非绝热耦合,使用IOA或多体态来传播表面跳跃轨迹。与IOA相比,多体修正使非绝热耦合重新规范化,导致时间平均耦合强度增加50%。然而,当包括退相干校正时,计算的重组寿命的差异显着减少。这一结果表明,IOA可以作为强约束纳米材料非辐射寿命预测的有效近似。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The Journal of Physical Chemistry Letters
The Journal of Physical Chemistry Letters CHEMISTRY, PHYSICAL-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
9.60
自引率
7.00%
发文量
1519
审稿时长
1.6 months
期刊介绍: The Journal of Physical Chemistry (JPC) Letters is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, chemical physicists, physicists, material scientists, and engineers. An important criterion for acceptance is that the paper reports a significant scientific advance and/or physical insight such that rapid publication is essential. Two issues of JPC Letters are published each month.
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