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Quantitative evaluation of energy migration between identical chromophores enabled by breaking symmetry

机译:打破对称性实现相同发色团之间能量迁移的定量评估

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Energy migration between the identical chromophores is a necessary process in both natural and artificial photosynthesis. The distance and orientation dependence of energy migration have not been experimentally investigated in detail. Here we propose a method to investigate energy migration. Two fluorophores are introduced into one strand of a DNA duplex with a quencher placed opposite one of fluorophores. This design enables asymmetrization of identical fluorophores and allows one fluorophore to behave as an acceptor. The emission intensities and lifetimes decrease depending on the efficiency of energy migration. Distance and orientation dependence are successfully quantified, and the excitation energy migration efficiencies measured are in excellent agreement with those calculated based on Förster theory. We also demonstrate that multi-step energy migration among four fluorophores can be estimated from the theory. These results may provide a basis for design and preparation of efficient light-harvesting photonic devices and chemical probes.
机译:在自然和人工光合作用中,相同发色团之间的能量迁移是必不可少的过程。尚未详细实验研究能量迁移的距离和方向依赖性。在这里,我们提出了一种研究能量迁移的方法。将两个荧光团引入DNA双链体的一条链中,并在荧光团之一的对面放置淬灭剂。这种设计可以使相同的荧光团不对称,并允许一个荧光团充当受体。发射强度和寿命降低取决于能量迁移的效率。成功地量化了距离和方向依赖性,并且测得的激发能迁移效率与基于Förster理论计算的激发能极好一致。我们还证明了可以从该理论估算出四个荧光团之间的多步能量迁移。这些结果可为设计和制备有效的光收集光子器件和化学探针提供基础。

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