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Charge recombination versus charge separation in donor-bridge-acceptor systems

机译:供体桥受体系统中的电荷重组与电荷分离

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Optimizing the ratio of the rates for charge separation (CS) over charge recombination (CR) is crucial to create long-lived charge-separated states. Mastering the factors that govern the electron transfer (ET) rates is essential when trying to achieve molecular-scale electronics, artificial photosynthesis, and also for the further development of solar cells. Much work has been put into the question of how the donor-acceptor distances and donor-bridge energy gaps affect the electronic coupling, V-DA, and thus the rates of ET. We present here a unique comparison on how these factors differently influence the rates for CS and CR in a porphyrin-based donor-bridge-acceptor model system. Our system contains three series, each of which focuses on a separate charge-transfer rate-determining factor, the donor-acceptor distance, the donor-bridge energy gap, and last, the influence of the electron acceptor on the rate for charge transfer. In these three series both CS and CR are governed by superexchange interactions which make a CR/CS comparative study ideal. We show here that the exponential distance dependence increases slightly for CR compared to that for CS as a result of the increased tunneling barrier height for this reaction, in accordance with the McConnell superexchange model. We also show that the dependence on the tunneling barrier height is different for CS and CR. This difference is highly dependent on the electron acceptor and thus cannot solely be explained by the differences in the frontier orbitals of the electron donor in these porphyrin systems.
机译:优化电荷分离(CS)速率与电荷重组(CR)速率的比率对于创建长寿命的电荷分离状态至关重要。在试图实现分子规模的电子学,人工光合作用以及太阳能电池的进一步发展时,掌握控制电子传输(ET)速率的因素至关重要。供体-受体距离和供体-桥能隙如何影响电子耦合,V-DA,从而影响ET的速率,已经做了很多工作。我们在这里提出了一个独特的比较,这些因素如何影响基于卟啉的供体桥受体模型系统中CS和CR的发生率。我们的系统包含三个系列,每个系列专注于一个单独的电荷转移速率决定因素,施主-受主距离,施主-桥能隙,以及最后电子受体对电荷转移速率的影响。在这三个系列中,CS和CR均受超交换相互作用的控制,这使CR / CS比较研究更为理想。根据麦康奈尔超级交换模型,由于反应的隧穿势垒高度增加,因此与CS相比,CR的指数距离依赖性略有增加。我们还表明,对于CS和CR,对隧道势垒高度的依赖性不同。该差异高度依赖于电子受体,因此不能仅通过这些卟啉体系中电子供体的前沿轨道的差异来解释。

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