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Efficient quantum dot-quantum dot and quantum dot-dye energy transfer in biotemplated assemblies

机译:生物模板组装中的高效量子点-量子点和量子点-染料能量转移

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CdSe semiconductor nanocrystal quantum dots are assembled into nanowire-like arrays employing microtubule fibers as nanoscale molecular scaffolds. Spectrally and time-resolved energy-transfer analysis is used to assess the assembly of the nanoparticles into the hybrid inorganic biomolecular structure. Specifically, we demonstrate that a comprehensive study of energy transfer between quantum dot pairs on the biotemplate and, alternatively, between quantum dots and molecular dyes embedded in the microtubule scaffold comprises a powerful spectroscopic tool for evaluating the assembly process. In addition to revealing the extent to which assembly has occurred, the approach allows determination of particle-to-particle (and particle-to-dye) distances within the biomediated array. Significantly, the characterization is realized in situ, without need for further sample workup or risk of disturbing the solution-phase constructs. Furthermore, we find that the assemblies prepared in this way exhibit efficient quantum dot-quantum dot and quantum dot-dye energy transfer that affords faster energy-transfer rates compared to densely packed quantum dot arrays on planar substrates and to small-molecule-mediated quantum dot-dye couples, respectively.
机译:CdSe半导体纳米晶体量子点被组装成使用微管纤维作为纳米级分子支架的纳米线状阵列。光谱和时间分辨的能量转移分析用于评估纳米颗粒向杂化无机生物分子结构的组装。具体而言,我们证明了对生物模板上的量子点对之间以及嵌入在微管支架中的量子点和分子染料之间的能量转移进行的全面研究,包括评估组装过程的强大光谱工具。除了揭示组装发生的程度外,该方法还可以确定生物介导的阵列中颗粒间的距离(以及颗粒间到染料的距离)。重要的是,该表征是在原位实现的,无需进一步的样品处理或干扰溶液相结构的风险。此外,我们发现以这种方式制备的组件表现出有效的量子点-量子点和量子点染料能量转移,与平面基板上的密集堆积量子点阵列和小分子介导的量子相比,其提供了更快的能量转移速率点染夫妇。

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