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首页> 外文期刊>The Journal of Chemical Physics >Electronic energy transfer through non-adiabatic vibrational-electronic resonance. I. Theory for a dimer
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Electronic energy transfer through non-adiabatic vibrational-electronic resonance. I. Theory for a dimer

机译:通过非绝热振动 - 电子共振传递电子能源。 I.一个二聚体的理论

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Non-adiabatic vibrational-electronic resonance in the excited electronic states of natural photosynthetic antennas drastically alters the adiabatic framework, in which electronic energy transfer has been conventionally studied, and suggests the possibility of exploiting non-adiabatic dynamics for directed energy transfer. Here, a generalized dimer model incorporates asymmetries between pigments, coupling to the environment, and the doubly excited state relevant for nonlinear spectroscopy. For this generalized dimer model, the vibrational tuning vector that drives energy transfer is derived and connected to decoherence between singly excited states. A correlation vector is connected to decoherence between the ground state and the doubly excited state. Optical decoherence between the ground and singly excited states involves linear combinations of the correlation and tuning vectors. Excitonic coupling modifies the tuning vector. The correlation and tuning vectors are not always orthogonal, and both can be asymmetric under pigment exchange, which affects energy transfer. For equal pigment vibrational frequencies, the nonadiabatic tuning vector becomes an anti-correlated delocalized linear combination of intramolecular vibrations of the two pigments, and the nonadiabatic energy transfer dynamics become separable. With exchange symmetry, the correlation and tuning vectors become delocalized intramolecular vibrations that are symmetric and antisymmetric under pigment exchange. Diabatic criteria for vibrational-excitonic resonance demonstrate that anti-correlated vibrations increase the range and speed of vibronically resonant energy transfer (the Golden Rule rate is a factor of 2 faster). A partial trace analysis shows that vibronic decoherence for a vibrational-excitonic resonance between two excitons is slower than their purely excitonic decoherence. (C) 2017 Author(s).
机译:在自然光合天线的激发电子状态下的非绝热振动 - 电子共振大大改变了绝热框架,其中传统上研究了电子能源转移,并提出了利用导向能量转移的非绝热动力学的可能性。这里,广义二聚体模型包含颜料之间的不对称,与环境耦合,以及对非线性光谱相关的双重激发状态。对于该广义二聚体模型,推导出能量传递的振动调整载体并连接到单独激发状态之间的破坏。相关矢量连接到地面态和双激发状态之间的干式堵塞。地面和单独激发态之间的光粘膜涉及相关和调谐向量的线性组合。激发器耦合改变调谐向量。相关性和调谐载体并不总是正交的,两者都可以在颜料交换下不对称,这会影响能量转移。对于等于颜料的振动频率,非等压调谐载体成为两种颜料的分子内振动的抗相关分层的线性组合,并且非抗动能动力学成为可分离的。随着交换对称性,相关性和调谐载体变成了颜料交换下是对称和反对称的分子化分子内振动。用于振动激发共振的型式标准表明,抗相关振动增加了增强谐振能量转移的范围和速度(黄金法则率为2重量倍数)。部分迹线分析表明,两个激子之间的振动激发振荡共振的振动式破碎速度比纯粹的激发力堵塞慢。 (c)2017年作者。

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