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Probing Energy and Electron Transfer Mechanisms in Fluorescence Quenching of Biomass Carbon Quantum Dots

机译:生物质碳量子点荧光猝灭的探测能量和电子转移机理

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The recent discovery of biomass-derived carbon quantum dots (CQDs) offers the potential to extend the sensing and imaging capabilities of quantum dots (QDs) to applications that require biocompatibility and environmental friendliness. Many studies have confirmed the exciting optical properties of CQDs and suggested a range of applications, but realizing the potential of CQDs will require a deeper fundamental understanding of their photophysical behavior. Here, biomass-derived CQDs were synthesized by hydrothermal processing methods from the aminopolysaccharide chitosan, and their fluorescence quenching behaviors were investigated. A family of nitroaromatics with different ring substituents was used to generate systematically varying CQD-quenching behaviors. Experimental evidence including a correlation between quenching constant and spectral overlap, fluorescence lifetime decay, and donor acceptor distance all demonstrate that the primary mechanism for QCD-quenching is Forster resonance energy transfer (FRET) and not electron transfer. Spectroelectrochemical studies with redox-dependent quenching molecules and studies with complex dye molecules further support this conclusion. We envision this fundamental understanding of CQDs will facilitate the application of these emerging nanomaterials for sensing and imaging.
机译:生物质衍生的碳量子点(CQD)的最新发现为将量子点(QD)的传感和成像功能扩展到需要生物相容性和环境友好性的应用提供了潜力。许多研究已经证实了CQD令人兴奋的光学特性,并提出了一系列的应用,但是要实现CQD的潜力,需要对它们的光物理行为有更深入的基本了解。在此,通过水热处理从氨基多糖壳聚糖合成生物质衍生的CQD,并研究了它们的荧光猝灭行为。具有不同环取代基的硝基芳香族化合物被用于产生系统变化的CQD猝灭行为。实验证据包括猝灭常数和光谱重叠,荧光寿命衰减和施主受体距离之间的关系,所有这些都表明QCD猝灭的主要机理是Forster共振能量转移(FRET)而不是电子转移。使用氧化还原依赖性淬灭分子的光谱电化学研究和使用复杂染料分子的研究进一步支持了这一结论。我们设想对CQD的这种基本理解将促进这些新兴的纳米材料在传感和成像中的应用。

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