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Quantum oscillatory exciton migration in photosynthetic reaction centers

机译:光合作用中心中的量子振荡激子迁移

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The harvesting of solar energy and its conversion to chemical energy is essential for all forms of life. The primary photon absorption, transport, and charge separation events, which trigger a chain of chemical reactions, take place in membrane-bound photosynthetic complexes. Whether quantum effects, stemming from entanglement of chromophores, persist in the energy transport at room temperature, despite the rapid decoherence effects caused by environment fluctuations, is under current active debate. If confirmed, these may explain the high efficiency of light harvesting and open up numerous applications to quantum computing and information processing. We present simulations of the photosynthetic reaction center of photosystem II that clearly establish oscillatory energy transport at room temperature originating from interference of quantum pathways. These signatures of quantum transport may be observed by two dimensional coherent optical spectroscopy.
机译:太阳能的收集及其向化学能的转化对于所有形式的生命都是必不可少的。在膜结合的光合复合物中发生主要的光子吸收,传输和电荷分离事件,这些事件触发一连串的化学反应。尽管由于环境波动而引起快速的去相干效应,但在室温下,尽管发色团的纠缠所产生的量子效应是否仍在能量传输中持续存在,目前仍在争论中。如果得到证实,这些可以解释光收集的高效率,并为量子计算和信息处理打开许多应用程序。我们目前对光系统II的光合作用反应中心的仿真,清楚地建立了在室温下源自量子途径干扰的振荡能量传输。量子相干的这些特征可以通过二维相干光谱法观察到。

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