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Efficient Fluorescence Energy Transfer System between CdTe-Doped Silica Nanoparticles and Gold Nanoparticles for Turn-On Fluorescence Detection of Melamine

机译:CdTe掺杂二氧化硅纳米粒子和金纳米粒子之间的高效荧光能量转移系统,用于三聚氰胺的开启荧光检测。

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We here report an efficient and enhanced fluorescence energy transfer system between confined quantum dots (QDs) by entrapping CdTe into the mesoporous silica shell (CdTe@SiO2) as donors and gold nanoparticles (AuNPs) as acceptors. At pH 6.50, the CdTe@SiO2-AuNPs assemblies coalesce to form larger clusters due to charge neutralization, leading to the fluorescence quenching of CdTe@SiO2 as a result of energy transfer. As compared with the energy transfer system between unconfined CdTe and AuNPs, the maximum fluorescence quenching efficiency of the proposed system is improved by about 27.0%, and the quenching constant, K_(sv), is increased by about 2.4-fold. The enhanced quenching effect largely turns off the fluorescence of CdTe@SiO2 and provides an optimal "off-state" for sensitive "turn-on" assay. In the present study, upon addition of melamine, the weak fluorescence system of CdTe@SiO2-AuNPs is enhanced due to the strong interactions between the amino group of melamine and the gold nanoparticles via covalent bond, leading to the release of AuNPs from the surfaces of CdTe@SiO2; thus, its fluorescence is restored. A "turn-on" fluorimetric method for the detection of melamine is proposed based on the restored fluorescence of the system. Under the optimal conditions, the fluorescence enhanced efficiency shows a linear function against the melamine concentrations ranging from 7.5 X 10~(-9) to 3.5 X 10~(-7) M (i.e., 1.0-44 ppb). The analytical sensitivity is improved by about 50%, and the detection limit is decreased by 5.0-fold, as compared with the analytical results using the CdTe-AuNPs system. Moreover, the proposed method was successfully applied to the determination of melamine in real samples with excellent recoveries in the range from 97.4 to 104.1%. Such a fluorescence energy transfer system between confined QDs and AuNPs may pave a new way for designing chemo/biosensing.
机译:我们在这里报告了一种有效和增强的荧光能量转移系统,它通过将CdTe包埋在介孔二氧化硅壳(CdTe @ SiO2)中作为施主和金纳米颗粒(AuNPs)作为受主,从而限制了量子点之间的转移。在pH 6.50时,由于电荷中和,CdTe @ SiO2-AuNPs组件聚结形成更大的簇,由于能量转移,导致CdTe @ SiO2的荧光猝灭。与无约束CdTe和AuNPs之间的能量转移系统相比,该系统的最大荧光猝灭效率提高了约27.0%,猝灭常数K_(sv)增加了约2.4倍。增强的猝灭效果在很大程度上关闭了CdTe @ SiO2的荧光,并为灵敏的“开启”分析提供了最佳的“关闭状态”。在本研究中,添加三聚氰胺后,由于三聚氰胺的氨基与金纳米颗粒之间通过共价键之间的强相互作用而增强了CdTe @ SiO2-AuNPs的弱荧光系统,导致AuNPs从表面释放的CdTe @ SiO2;因此,其荧光得以恢复。基于系统的恢复荧光,提出了一种“开启”荧光检测三聚氰胺的方法。在最佳条件下,荧光增强效率对三聚氰胺浓度范围为7.5 X 10〜(-9)至3.5 X 10〜(-7)M(即1.0-44 ppb)呈线性函数。与使用CdTe-AuNPs系统的分析结果相比,分析灵敏度提高了约50%,检测限降低了5.0倍。此外,该方法成功地用于实际样品中三聚氰胺的测定,回收率在97.4%至104.1%之间。这种在封闭的量子点和金纳米粒子之间的荧光能量转移系统可能为化学/生物传感设计铺平新的道路。

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