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Theoretical study of dynamic electron-spin-polarization via the doublet-quartet quantum-mixed state and time-resolved ESR spectra of the quartet high-spin state

机译:通过四重态四重态量子混合态和时间分辨的ESR光谱对动态电子自旋极化的理论研究

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The mechanism of the unique dynamic electron polarization of the quartet (S = 3/2) high-spin state via a doublet-quartet quantum-mixed state and detail theoretical calculations of the population transfer are reported. By the photo-induced electron transfer, the quantum-mixed charge-separate state is generated in acceptor-donor-radical triad (A-D-R). This mechanism explains well the unique dynamic electron polarization of the quartet state of A-D-R. The generation of the selectively populated quantum-mixed state and its transfer to the strongly coupled pure quartet and doublet states have been treated both by a perturbation approach and by exact numerical calculations. The analytical solutions show that generation of the quantum-mixed states with the selective populations after de-coherence and/or accompanying the (complete) dephasing during the charge-recombination are essential for the unique dynamic electron polarization. Thus, the elimination of the quantum coherence (loss of the quantum information) is the key process for the population transfer from the quantum-mixed state to the quartet state. The generation of high-field polarization on the strongly coupled quartet state by the charge-recombination process can be explained by a polarization transfer from the quantum-mixed charge-separate state. Typical time-resolved ESR patterns of the quantum-mixed state and of the strongly coupled quartet state are simulated based on the generation mechanism of the dynamic electron polarization. The dependence of the spectral pattern of the quartet high-spin state has been clarified for the fine-structure tensor and the exchange interaction of the quantum-mixed state. The spectral pattern of the quartet state is not sensitive towards the fine-structure tensor of the quantum-mixed state, because this tensor contributes only as a perturbation in the population transfer to the spin-sublevels of the quartet state. Based on the stochastic Liouville equation, it is also discussed why the selective population in the quantum-mixed state is generated for the "finite field" spin-sublevels. The numerical calculations of the elimination of the quantum coherence (de-coherence and/or dephasing) are demonstrated. A new possibility of the enhanced intersystem crossing pathway in solution is also proposed.
机译:通过四重态四重态量子混合态,研究了四重态(S = 3/2)高自旋态独特的动态电子极化机理,以及详细的人口迁移理论计算。通过光诱导的电子转移,在受体-供体-自由基三元组(A-D-R)中产生了量子混合的电荷分离状态。该机制很好地解释了A-D-R四重态的独特动态电子极化。选择性填充的量子混合态的产生及其向强耦合纯四重态和双重态的转移已经通过扰动方法和精确的数值计算得到了处理。分析解决方案表明,在去相干之后和/或在电荷复合期间伴随(完全)去相之后,具有选择性种群的量子混合态的产生对于独特的动态电子极化是必不可少的。因此,消除量子相干性(丢失量子信息)是人口从量子混合态向四重态转移的关键过程。电荷复合过程在强耦合四重态上产生的高场极化可以通过量子混合电荷分离态的极化转移来解释。基于动态电子极化的产生机理,模拟了量子混合态和强耦合四重态的典型时间分辨ESR图。对于精细结构张量和量子混合态的交换相互作用,已经阐明了四重态高自旋态的光谱图案的依赖性。四重态的光谱模式对量子混合态的精细结构张量不敏感,因为该张量仅作为对四重态自旋子能级的总体转移的扰动。基于随机的Liouville方程,还讨论了为什么为“有限域”自旋子能级生成处于量子混合状态的选择性总体。证明了消除量子相干(去相干和/或移相)的数值计算。还提出了解决方案中增强的系统间交叉途径的新可能性。

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