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Improving Energy Transfer in QD-DNA Photonic Networks

机译:提高QD-DNA光子网络中的能量转移

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There is considerable research in the area of manipulating light below the diffraction limit, with potential applications ranging from information processing to light-harvesting. In such work, a common problem is a lack of efficiency associated with non-radiative losses, e.g., ohmic loss in plasmonic structures. From this point of view, one attractive method for sub-wavelength light manipulation is to use FoErster resonance energy transfer (FRET) between chromophores. Although most current work does not show high efficiency, biology suggests that this approach could achieve very high efficiency. In order to achieve this goal, the geometry and spacing of the chromophores must be optimized. For this, DNA provides an easy means for the self-assembly of these complex structures. With well established ligation chemistries, it is possible to create facile hierarchical assemblies of quantum dots (QDs) and organic dyes using DNA as the platform. These nanostructures range from simple linear wires to complex 3-dimensional structures all of which can be self-assembled around a central QD. The efficiency of the system can then be tuned by changing the spacing between chromophores, changing the DNA geometry such that the donor to acceptor ratio changes, or changing the number of DNA structures that are self-assembled around the central QD. By exploring these variables we have developed a flexible optical system for which the efficiency can be both controlled and optimized.
机译:在衍射极限下方的灯光下方的区域存在相当大的研究,其中潜在的应用范围从信息处理到光收获。在这样的工作中,常见问题是与非辐射损耗相关的效率,例如,等离子体结构中的欧姆损失。从这个角度来看,一个有吸引力的子波长光操纵方法是在发色团之间使用Foerster谐振能量转移(FRET)。虽然大多数当前的工作没有表现出高效率,但生物学表明这种方法可以达到非常高的效率。为了实现这一目标,必须优化发色团的几何形状和间隔。为此,DNA为这些复杂结构的自组装提供了一种简单的方法。具有成熟的结扎化学品,可以使用DNA作为平台来创建量子点(QDS)和有机染料的容易层次组件。这些纳米结构的范围从简单的线性线到复杂的3维结构,所有这些都可以在中央QD周围自组装。然后可以通过改变发色团之间的间隔来调谐系统的效率,改变DNA几何形状,使得供体对受体比变化,或改变在中央QD周围自组装的DNA结构的数量。通过探索这些变量,我们开发了一种灵活的光学系统,可以效率控制和优化。

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