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Using Metal Complex-Labeled Peptides for Charge Transfer-Based Biosensing with Semiconductor Quantum Dots

机译:使用金属络合物标记的肽用于电荷转移的生物传感与半导体量子点的生物传感

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Luminescent colloidal semiconductor quantum dots (QDs) have unique optical and photonic properties and are highly sensitive to charge transfer in their surrounding environment. In this study we used synthetic peptides as physical bridges between CdSe-ZnS core-shell QDs and some of the most common redox-active metal complexes to understand the charge transfer interactions between the metal complexes and QDs. We found that QD emission underwent quenching that was highly dependent on the choice of metal complex used. We also found that quenching traces the valence or number of metal complexes brought into close proximity of the nanocrystal surface. Monitoring of the QD absorption bleaching in the presence of the metal complex provided insight into the charge transfer mechanism. The data suggest that two distinct charge transfer mechanisms can take place. One directly to the QD core states for neutral capping ligands and a second to surface states for negatively charged capping ligands. A basic understanding of the proximity driven charge-transfer and quenching interactions allowed us to construct proteolytic enzyme sensing assemblies with the QD-peptide-metal complex conjugates.
机译:发光胶体半导体量子点(QDS)具有独特的光学和光子性能,对其周围环境中的电荷转移非常敏感。在这项研究中,我们使用的是Cdse-ZnS核 - 壳QD和一些最常见的氧化还原活性金属配合物之间的合成肽作为物理桥,以了解金属配合物和QD之间的电荷转移相互作用。我们发现QD发射接受了高度依赖于所用金属复合物的选择的猝灭。我们还发现淬火迹线迹线使得金属配合物的价值或数量紧邻纳米晶体表面的近距离。在金属配合物存在下监测QD吸收漂白提供了进入电荷转移机制的洞察力。数据表明,可以发生两个不同的电荷转移机制。一种直接向QD核心状态用于中性封端配体和第二到表面状态,用于带负电荷的覆盖配体。对接近驱动电荷转移和淬火相互作用的基本理解使我们用QD肽 - 金属复合缀合物构建蛋白水解酶传感组件。

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