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胶体无机纳米粒子的表面修饰、功能化和生物缀合。

Surface modification, functionalization and bioconjugation of colloidal inorganic nanoparticles.

机构信息

Institut Català de Nanotecnologia, Campus Universitat Autònoma de Barcelona, Bellaterra, Spain.

出版信息

Philos Trans A Math Phys Eng Sci. 2010 Mar 28;368(1915):1333-83. doi: 10.1098/rsta.2009.0273.

Abstract

Inorganic colloidal nanoparticles are very small, nanoscale objects with inorganic cores that are dispersed in a solvent. Depending on the material they consist of, nanoparticles can possess a number of different properties such as high electron density and strong optical absorption (e.g. metal particles, in particular Au), photoluminescence in the form of fluorescence (semiconductor quantum dots, e.g. CdSe or CdTe) or phosphorescence (doped oxide materials, e.g. Y(2)O(3)), or magnetic moment (e.g. iron oxide or cobalt nanoparticles). Prerequisite for every possible application is the proper surface functionalization of such nanoparticles, which determines their interaction with the environment. These interactions ultimately affect the colloidal stability of the particles, and may yield to a controlled assembly or to the delivery of nanoparticles to a target, e.g. by appropriate functional molecules on the particle surface. This work aims to review different strategies of surface modification and functionalization of inorganic colloidal nanoparticles with a special focus on the material systems gold and semiconductor nanoparticles, such as CdSe/ZnS. However, the discussed strategies are often of general nature and apply in the same way to nanoparticles of other materials.

摘要

无机胶体纳米粒子是非常小的纳米级物体,具有无机核心,分散在溶剂中。根据它们所包含的材料,纳米粒子可以具有许多不同的性质,如高电子密度和强光吸收(例如金属粒子,特别是 Au)、荧光形式的光致发光(半导体量子点,例如 CdSe 或 CdTe)或磷光(掺杂氧化物材料,例如 Y(2)O(3))或磁矩(例如氧化铁或钴纳米粒子)。每种可能应用的前提是对这些纳米粒子进行适当的表面功能化,这决定了它们与环境的相互作用。这些相互作用最终会影响颗粒的胶体稳定性,并可能导致颗粒的可控组装或向目标的输送,例如通过颗粒表面上适当的功能分子。这项工作旨在综述无机胶体纳米粒子的表面改性和功能化的不同策略,特别关注金和半导体纳米粒子(例如 CdSe/ZnS)的材料系统。然而,所讨论的策略通常具有普遍性,并且同样适用于其他材料的纳米粒子。

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