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Vibrational damping effects on electronic energy relaxation in molecular aggregates

机译:振动阻尼对分子聚集体电子能量松弛的影响

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摘要

Representation of molecular vibrational degrees of freedom by independent harmonic oscillators, when describing electronic spectra or electronic excitation energy transport, raises unfavourable effects as vibrational energy relaxation becomes inaccessible. A standard theoretical description is extended in this paper by including both electronic-phonon and vibrational-phonon couplings. Using this approach we have simulated a model pigment-protein system and have shown that intermode coupling leads to the quenching of pigment vibrational modes, and to the redistribution of fluctuation spectral density with respect to the electronic excitations. Moreover, new energy relaxation pathways, opened by the vibrational-phonon interaction, allow to reach the electronic excited state equilibrium quicker in the naturally occurring water soluble chlorophyll binding protein (WSCP) aggregate, demonstrating the significance that the damping of molecular vibrations has for the rate of the intramolecular energy relaxation process.
机译:通过独立谐波振荡器表示分子振动自由度的分子振动自由度,当描述电子谱或电子励磁能量传输时,将不利的效果引发,因为振动能量松弛变得无法进入。通过包括电子 - 声子和振动式声子耦合,在本文中延伸了标准的理论描述。使用这种方法,我们已经模拟了模型颜料蛋白质系统,并且已经表明,相互耦合导致颜料振动模式的淬火,以及相对于电子激发的波动谱密度的重新分布。此外,通过振动 - 声子相互作用开口的新能量松弛途径,允许在天然存在的水溶性叶绿素结合蛋白(WSCP)聚集体中快速地达到电子激发状态平衡,证明了分子振动阻尼的重要性分子内能量松弛过程的速率。

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