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High-Efficiency Excitation Energy Transfer in Biohybrid Quantum Dot-Bacterial Reaction Center Nanoconjugates

机译:生物冬季量子点细菌反应中心纳米缀合物的高效励磁能量转移

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摘要

Reaction centers (RCs) are the pivotal component of natural photosystems, converting solar energy into the potential difference between separated electrons and holes that is used to power much of biology. RCs from anoxygenic purple photosynthetic bacteria such as Rhodobacter sphaeroides only weakly absorb much of the visible region of the solar spectrum, which limits their overall light-harvesting capacity. For in vitro applications such as biohybrid photodevices, this deficiency can be addressed by effectively coupling RCs with synthetic light-harvesting materials. Here, we studied the time scale and efficiency of Forster resonance energy transfer (FRET) in a nanoconjugate assembled from a synthetic quantum dot (QD) antenna and a tailored RC engineered to be fluorescent. Timecorrelated single-photon counting spectroscopy of biohybrid conjugates enabled the direct determination of FRET from QDs to attached RCs on a time scale of 26.6 +/- 0.1 ns and with a high efficiency of 0.75 +/- 0.01.
机译:反应中心(RCs)是自然光系统的关键组成部分,将太阳能转化为分离的电子和空穴之间的电位差,用于为许多生物提供能量。来自球形红杆菌(Rhodobacter sphaeroides)等无氧紫色光合细菌的RCs只能微弱地吸收太阳光谱的大部分可见区域,这限制了它们的整体采光能力。对于生物混合光电器件等体外应用,可以通过将RCs与合成光捕获材料有效耦合来解决这一缺陷。在这里,我们研究了由合成量子点(QD)天线和定制的荧光RC组装而成的纳米共轭体中福斯特共振能量转移(FRET)的时间尺度和效率。生物杂交共轭体的时间相关单光子计数光谱能够在26.6+/-0.1 ns的时间尺度上,以0.75+/-0.01的高效率,直接测定从量子点到连接的RCs的FRET。

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