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Excitonic Interactions in Bacteriochlorin Homo-Dyads Enable Charge Transfer: A New Approach to the Artificial Photosynthetic Special Pair

机译:细菌霉素中的激子相互作用使电荷转移:人工光合特殊对的一种新方法。

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摘要

Excitonically coupled bacteriochlorin (BC) dimers constitute a primary electron donor (special pair) in bacterial photosynthesis and absorbing units in light-harvesting antenna. However, the exact nature of the excited state of these dyads is still not fully understood. Here, we report a detailed spectroscopic and computational investigation of a series of symmetrical bacteriochlorin dimers, where the bacteriochlorins are connected either directly or by a phenylene bridge of variable length. The excited state of these dyads is quenched in high-dielectric solvents, which we attribute to photoinduced charge transfer. The mixing of charge transfer with the excitonic state causes accelerated (within 41 ps) decay of the excited state for the directly linked dyad, which is reduced by orders of magnitude with each additional phenyl ring separating the bacteriochlorins. These results highlight the origins of the excited-state dynamics in symmetric BC dyads and provide a new model for studying the primary processes in photosynthesis and for the development of artificial, biomimetic systems for solar energy conversion.
机译:外显子耦合的细菌二氯(BC)二聚体构成细菌光合作用的主要电子供体(特殊对)和光收集天线中的吸收单元。但是,仍未完全了解这些二重激发态的确切性质。在这里,我们报告了一系列对称的细菌绿素二聚体的详细光谱和计算研究,其中细菌绿素直接或通过可变长度的亚苯基桥连接。这些双体的激发态在高介电溶剂中被淬灭,这归因于光诱导的电荷转移。电荷转移与激子态的混合导致直接连接的二元体的激发态加速(在41 ps内)衰减,并且由于每个额外的苯环将细菌绿素分隔开,因此衰减了几个数量级。这些结果突显了对称BC二元体中激发态动力学的起源,并为研究光合作用的主要过程以及开发用于太阳能转换的人工仿生系统提供了新模型。

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