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硅-金属核壳纳米结构。

Silica-metal core-shell nanostructures.

机构信息

Institute of Optoelectronics, Military University of Technology, Kaliskiego 2, 00-908 Warsaw, Poland.

出版信息

Adv Colloid Interface Sci. 2012 Jan 15;170(1-2):28-47. doi: 10.1016/j.cis.2011.11.002. Epub 2011 Nov 13.

Abstract

Silica-metal nanostructures consisting of silica cores and metal nanoshells attract a lot of attention because of their unique properties and potential applications ranging from catalysis and biosensing to optical devices and medicine. The important feature of these nanostructures is the possibility of controlling their properties by the variation of their geometry, shell morphology and shell material. This review is devoted to silica-noble metal core-shell nanostructures; specifically, it outlines the main methods used for the preparation and surface modification of silica particles and presents the major strategies for the formation of metal nanoshells on the modified silica particles. A special emphasis is given to the Stöber method, which is relatively simple, effective and well verified for the synthesis of large and highly uniform silica particles (with diameters from 100 nm to a few microns). Next, the surface chemistry of these particles is discussed with a special focus on the attachment of specific organic groups such as aminopropyl or mercaptopropyl groups, which interact strongly with metal species. Finally, the synthesis, characterization and application of various silica-metal core-shell nanostructures are reviewed, especially in relation to the siliceous cores with gold or silver nanoshells. Nowadays, gold is most often used metal for the formation of nanoshells due to its beneficial properties for many applications. However, other metals such as silver, platinum, palladium, nickel and copper were also used for fabrication of core-shell nanostructures. Silica-metal nanostructures can be prepared using various methods, for instance, (i) growth of metal nanoshells on the siliceous cores with deposited metal nanoparticles, (ii) reduction of metal species accompanied by precipitation of metal nanoparticles on the modified silica cores, and (iii) formation of metal nanoshells under ultrasonic conditions. A special emphasis is given to the seed-mediated growth, where metal nanoshells are formed on the modified silica cores with deposited metal nanoparticles. This strategy assures a good control of the nanoshell thickness as well as its surface properties.

摘要

由二氧化硅核和金属纳米壳组成的硅基金属纳米结构由于其独特的性质和潜在的应用而备受关注,这些应用范围从催化和生物传感到光学器件和医学。这些纳米结构的重要特点是可以通过改变其几何形状、壳形态和壳材料来控制其性质。本文综述了硅-贵金属核壳纳米结构,具体介绍了用于制备和表面修饰二氧化硅颗粒的主要方法,并提出了在修饰后的二氧化硅颗粒上形成金属纳米壳的主要策略。特别强调了 Stöber 方法,该方法相对简单、有效,并且经过了很好的验证,可用于合成大尺寸且高度均匀的二氧化硅颗粒(直径从 100nm 到几微米)。接下来,讨论了这些颗粒的表面化学,特别关注与金属物种强烈相互作用的特定有机基团(如氨丙基或巯丙基)的附着。最后,综述了各种硅-金属核壳纳米结构的合成、表征和应用,特别是与具有金或银纳米壳的硅质核有关的应用。如今,由于其对许多应用有益的性质,金是最常用于形成纳米壳的金属。然而,其他金属,如银、铂、钯、镍和铜,也被用于制造核壳纳米结构。硅基金属纳米结构可以通过多种方法制备,例如:(i)在沉积有金属纳米颗粒的硅质核上生长金属纳米壳,(ii)在修饰后的硅质核上还原金属物种并同时沉淀金属纳米颗粒,以及(iii)在超声条件下形成金属纳米壳。特别强调了种子介导生长,其中金属纳米壳是在沉积有金属纳米颗粒的修饰后的硅质核上形成的。该策略可以很好地控制纳米壳的厚度及其表面性质。

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