通过激发传递态光学地进入暗态

Zixuan Hu, G. Engel, S. Kais
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摘要

太阳能收集系统的效率很大程度上取决于它们在重组之前将激励从天线转移到能量捕获中心的能力。暗态保护通过天线结构中各亚基之间的相干耦合实现,可以显著减少辐射复合,提高能量捕获效率。由于暗态不能由基态的光学跃迁填充,它们通常通过明亮态的声子弛豫进入。在这项研究中,我们探索了一种通过光学跃迁连接暗态和亮态的新方法。在受天然光合天线启发的环状发色团系统中,单激发亮态可以通过一定的双激发态光学连接到最低能量的单激发暗态。我们称这种双激发态为渡口态,并证明它们是两类双激发态之间偶然简并的结果。然后,我们从数学上证明,只有当环上的子单元数N满足N=4l+2 (l为整数)时,轮渡状态才存在。数值计算证实,渡轮状态增强了我们的模型的能量传递能力,与较小的N值相比,即使没有声子弛豫,在N=6时也显示出显著的能量传递功率峰值。所提出的摆渡状态的数学理论并不局限于这一特定的系统或数值模型。事实上,它潜在地适用于任何采用环形发色团排列的相干光学系统。在理想情况下,轮渡态机制在弱声子耗散、弱位能失序和大耦合强度失序下也表现出鲁棒性。
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Accessing dark states optically through excitation-ferrying states
The efficiency of solar energy harvesting systems is largely determined by their ability to transfer excitations from the antenna to the energy trapping center before recombination. Dark state protection, achieved by coherent coupling between subunits in the antenna structure, can significantly reduce radiative recombination and enhance the efficiency of energy trapping. Because the dark states cannot be populated by optical transitions from the ground state, they are usually accessed through phononic relaxation from the bright states. In this study, we explore a novel way of connecting the dark states and the bright states via optical transitions. In a ring-like chromophore system inspired by natural photosynthetic antennae, the single-excitation bright state can be optically connected to the lowest energy single-excitation dark state through certain double-excitation states. We call such double-excitation states the ferry states and show that they are the result of accidental degeneracy between two categories of double-excitation states. We then mathematically prove that the ferry states are only available when N, the number of subunits on the ring, satisfies N=4l+2 (l being an integer). Numerical calculations confirm that the ferry states enhance the energy transfer power of our model, showing a significant energy transfer power spike at N=6 compared with smaller N values, even without phononic relaxation. The proposed mathematical theory for the ferry states is not restricted to this one particular system or numerical model. In fact, it is potentially applicable to any coherent optical system that adopts a ring-shaped chromophore arrangement. Beyond the ideal case, the ferry state mechanism also demonstrates robustness under weak phononic dissipation, weak site energy disorder, and large coupling strength disorder.
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