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Vibrational control of electron-transfer reactions: a feasibility study for the fast coherent transfer regime

机译:电子转移反应的振动控制:快速相干转移机制的可行性研究

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摘要

Molecular vibrations and electron-vibrational interactions are central to the control of biomolecular electron and energy-transfer rates. The vibrational control of molecular electron-transfer reactions by infrared pulses may enable the precise probing of electronic-vibrational interactions and of their roles in determining electron-transfer mechanisms. This type of electron-transfer rate control is advantageous because it does not alter the electronic state of the molecular electron-transfer system or irreversibly change its molecular structure. For bridge-mediated electron-transfer reactions, infrared (vibrational) excitation of the bridge linking the electron donor to the electron acceptor was suggested as being capable of influencing the electron-transfer rate by modulating the bridge-mediated donor-to-acceptor electronic coupling. This kind of electron-transfer experiment has been realized, demonstrating that bridge-mediated electron-transfer rates can be changed by exciting vibrational modes of the bridge. Here, we use simple models and ab initio computations to explore the physical constraints on one's ability to vibrationally perturb electron-transfer rates using infrared excitation. These constraints stem from the nature of molecular vibrational spectra, the strengths of the electron-vibrational coupling, and the interaction between molecular vibrations and infrared radiation. With these constraints in mind, we suggest parameter regimes and molecular architectures that may enhance the vibrational control of electron transfer for fast coherent electron-transfer reactions.
机译:分子振动和电子振动相互作用是控制生物分子电子和能量传输速率的关键。通过红外脉冲对分子电子转移反应进行振动控制,可以精确探测电子-振动相互作用及其在确定电子转移机理中的作用。这种类型的电子传输速率控制是有利的,因为它不会改变分子电子传输系统的电子状态或不可逆地改变其分子结构。对于桥介导的电子转移反应,建议将电子供体与电子受体连接的桥的红外(振动)激发能够通过调节桥介导的供体-受体电子耦合来影响电子转移速率。 。已经实现了这种电子传输实验,证明了通过激发电桥的振动模式可以改变电桥介导的电子传输速率。在这里,我们使用简单的模型和从头算起的方式来探索物理上对使用红外激发振动扰动电子传输速率的能力的限制。这些限制源于分子振动光谱的性质,电子振动耦合的强度以及分子振动与红外辐射之间的相互作用。考虑到这些约束条件,我们建议使用参数方案和分子架构来增强电子传递的振动控制,以实现快速相干电子传递反应。

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