从费米黄金定律到开放量子系统:非辐射率的基本概念

IF 3.2 3区 化学 Q2 CHEMISTRY, PHYSICAL
Andrea Landi, D. K. Andrea Phan Huu, Anna Painelli
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引用次数: 0

摘要

准确估算非辐射率是可靠解决分子功能材料中激发态命运问题的一项艰巨任务,这一问题与有机光电器件的应用和量子技术创新材料的开发息息相关。解决非辐射率问题是一项棘手的任务,因为它不可避免地要求放弃我们熟悉的封闭量子系统领域。流行的费米黄金定律,更具体地说是其状态到状态的版本,适用于封闭量子系统,只能描述退化态之间的非辐射跃迁。人们提出了几种策略来打开状态到状态的费米黄金定律。在此,我们将讨论基于生成函数方法的最流行策略,该方法可以轻松处理大量振动自由度,已在几种流行的计算代码中实现。具体来说,通过费米黄金分割律的傅里叶变换从能域到时域计算非辐射率,从而获得生成函数,生成函数的后傅里叶变换定义了速率谱,即非辐射率与绝热间隙的函数关系。反傅里叶变换不可避免地要在有限的时间窗口内计算,从而导致速率谱变宽。使用有限的时间观测窗口隐含地对应于信号的阻尼,从而打开了状态到状态费米黄金法则的封闭量子系统。利用非辐射率的最简单模型,即位移振荡器模型,我们比较了通过生成函数方法和通过真正的开放量子系统方法,即雷德菲尔德-布洛赫方法获得的结果。为了便于比较,我们引入了一种混合方法,对产生函数中的振荡项进行阻尼,以模仿雷德菲尔德-布洛赫模型中计算的一致性弛豫动力学。我们还简要讨论了(准)静态无序的作用。这项工作的主要信息是,由于需要以现象学的方式引入系统与环境之间的相互作用,因此不可能对非辐射率进行严格的ab initio估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

From the Fermi Golden Rule to Open Quantum Systems: Basic Concepts on Non-radiative Rates

From the Fermi Golden Rule to Open Quantum Systems: Basic Concepts on Non-radiative Rates
The accurate estimate of nonradiative rates is a compelling endeavor to reliably address the fate of excited states in molecular functional materials, an issue of fundamental relevance and of enormous interest for applications in organic optoelectronic devices and in the development of innovative materials for quantum technologies. Addressing nonradiative rates is a tricky task as it unavoidably requires to abandon the familiar realm of closed quantum systems. The popular Fermi golden rule, and more specifically its state-to-state version, applies to closed quantum systems, and only describes non-radiative transitions between degenerate states. Several strategies have been proposed to open the state-to-state Fermi golden rule. Here, we address the most popular strategy, based on the generating function approach, that, allowing to easily deal with a large number of vibrational degrees of freedom, is implemented in several popular computational codes. Specifically, non-radiative rates are calculated via a Fourier transform of the Fermi golden rule from the energy to the time domain to obtain the generating function, whose back-Fourier transform defines the rate-spectra, i.e., the non-radiative rates as a function of the adiabatic gap. The back-Fourier transform is unavoidably calculated on a finite time-window, leading to broadened rate spectra. Working with a finite time-observation window implicitly corresponds to a damping of the signal, hence opening the closed quantum system of the state-to-state Fermi Golden rule. Exploiting the simplest model for non-radiative rates, i.e., a displaced oscillator model, we compare results obtained via the generating function approach with those obtained via a genuine open quantum system approach, the Redfield-Bloch approach. To facilitate the comparison, we introduce a hybrid approach, damping the oscillating terms in the generating function as to mimic the relaxation dynamics of coherences calculated in the Redfield-Bloch model. The role of (quasi-)static disorder is briefly addressed. The main message of this work is that a strictly ab initio estimate of non-radiative rates is not possible, due to the need to introduce in a phenomenological way of the interaction between the system and the environment.
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来源期刊
The Journal of Physical Chemistry C
The Journal of Physical Chemistry C 化学-材料科学:综合
CiteScore
6.50
自引率
8.10%
发文量
2047
审稿时长
1.8 months
期刊介绍: The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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