School of Molecular Sciences and Department of Physics, Arizona State University, PO Box 871504, Tempe, Arizona 85287-1504, USA.
J Chem Phys. 2022 Sep 7;157(9):095102. doi: 10.1063/5.0102707.
Diffusional dynamics of the donor-acceptor distance are responsible for the appearance of a new time scale of diffusion over the distance of electronic tunneling in electron-transfer reactions. The distance dynamics compete with the medium polarization dynamics in the dynamics-controlled electron-transfer kinetics. The pre-exponential factor of the electron-transfer rate constant switches, at the crossover distance, between a distance-independent, dynamics-controlled plateau and exponential distance decay. The crossover between two regimes is controlled by an effective relaxation time slowed down by a factor exponentially depending on the variance of the donor-acceptor displacement. Flexible donor-acceptor complexes must show a greater tendency for dynamics-controlled electron transfer. Energy chains based on electron transport are best designed by placing the redox cofactors near the crossover distance.
供体-受体距离的扩散动力学导致电子转移反应中电子隧穿距离上出现新的扩散时间尺度。在动力学控制的电子转移动力学中,距离动力学与介质极化动力学竞争。电子转移速率常数的指数前因子在交叉距离处从与距离无关的动力学控制平台切换到指数距离衰减。两种状态之间的转变由有效弛豫时间控制,该弛豫时间通过与供体-受体位移方差呈指数关系的因子减慢。具有柔性供体-受体配合物的体系必须表现出更大的动力学控制电子转移的趋势。基于电子输运的能量链最好通过将氧化还原辅助因子放置在交叉距离附近来设计。