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不同表面修饰的胶体量子点光增强过程的动力学分析。

Dynamic analysis of the photoenhancement process of colloidal quantum dots with different surface modifications.

机构信息

Departamento de Ingeniería Eléctrica, Electrónica, C y S Universidad de Oviedo, Gijón (Asturias), Spain.

出版信息

Nanotechnology. 2011 Sep 23;22(38):385703. doi: 10.1088/0957-4484/22/38/385703. Epub 2011 Aug 31.

Abstract

Photoinduced fluorescence enhancement of colloidal quantum dots (QDs) is a hot topic addressed in many studies due to its great influence on the bioanalytical performance of such nanoparticles. However, understanding of this process is not a simple task, and it cannot be explained by a general mechanism as it greatly depends on the QDs' nature, solubilization strategies, surrounding environment, etc. In this vein, we have critically compared the behavior of CdSe QDs (widely used in bioanalytical applications) with different surface modifications (ligand exchange and polymer coating), in different controlled experimental conditions, in the presence-absence of the ZnS layer and in different media when exposed for long times to intense UV irradiation. Thus six different types of colloidal QDs were finally studied. This research was carried out from a novel perspective, based on the analysis of the dynamic behavior of the photoactivation process (of great interest for further applications of QDs as labels in biomedical applications). The results showed a different behavior of the studied colloidal QDs after UV irradiation in terms of their photoluminescence characteristics, potential toxicity due to metal release to the environment, nanoparticle stability and surface coating degradation.

摘要

由于对胶体量子点(QD)的光致荧光增强在生物分析性能方面有重大影响,因此在许多研究中都对其进行了探讨,这是一个热门话题。然而,由于该过程极大地依赖于 QD 的性质、增溶策略、周围环境等因素,因此无法用一般的机制来解释,对其理解并不是一件简单的事情。有鉴于此,我们在不同的受控实验条件下,在存在和不存在 ZnS 层的情况下,以及在不同的介质中,对具有不同表面修饰(配体交换和聚合物涂层)的 CdSe QD(广泛用于生物分析应用)的行为进行了严格的比较,这些 QD 经长时间强紫外线照射。最终研究了六种不同类型的胶体 QD。这项研究是基于对光致活化过程的动态行为的分析(对于将 QD 作为生物医学应用中的标记进一步应用非常重要),从一个新的角度进行的。结果表明,研究中的胶体 QD 在经紫外线照射后的光致发光特性、由于金属向环境释放而导致的潜在毒性、纳米颗粒稳定性和表面涂层降解方面表现出不同的行为。

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