Guihen Elizabeth
Graduate Entry Medical School (GEMS) and the Materials and Surface Science Institute (MSSI), Faculty of Education and Health Sciences, University of Limerick, Ireland.
Electrophoresis. 2017 Sep;38(17):2184-2192. doi: 10.1002/elps.201600564. Epub 2017 May 8.
To date, alkylthiol gold nanoparticles (AuNPs) have been widely used in electro-chromatographic separation techniques as a viable alternative to traditional stationary phases. This is mainly due to their stability, chemical inertness, ease of functionality, increased phase ratio, ability to form self-assembled monolayers. They also yield versatile stationary phases with highly specific targeted functionalities. At the nanoscale region, the chemical and physical properties of a molecule display different attributes to that of the parent molecules or material, hence these features can be harnessed in electro-driven chromatographic separations. Application areas illustrating the use of AuNPs in separation science continue to grow and expand to cover many different kinds of analysis. The last decade has witnessed a successful trend in miniaturisation of chemical separation systems toward the micro and nanoscale ranges. Nanoparticle-based stationary phases fit well with performing chemical separations on microfluidic and capillary platforms. In this review the theory of the use of alkylthiol gold nanoparticles in electro-chromatographic driven separation methods will be discussed. This will be followed by details of recent and selected applications showing alkylthiol gold nanoparticles in capillary electrophoretic and open-tubular electro-chromatographic separations. This review will focus solely on alkylthiol based gold nanoparticles, therefore other kinds of chemical moieties bonded to gold nanoparticles are outside the scope of this review. Finally the future outlook of this exciting technology will be outlined in some detail in the final section.
迄今为止,烷基硫醇金纳米粒子(AuNPs)作为传统固定相的可行替代品,已广泛应用于电色谱分离技术中。这主要归因于它们的稳定性、化学惰性、易于功能化、相比增加、形成自组装单分子层的能力。它们还能产生具有高度特异性靶向功能的多功能固定相。在纳米尺度区域,分子的化学和物理性质与母体分子或材料的性质表现出不同的属性,因此这些特性可用于电驱动色谱分离。展示AuNPs在分离科学中应用的领域不断增加并扩展,涵盖了许多不同类型的分析。过去十年见证了化学分离系统朝着微米和纳米尺度范围小型化的成功趋势。基于纳米粒子的固定相与在微流控和毛细管平台上进行化学分离非常契合。在这篇综述中,将讨论在电色谱驱动分离方法中使用烷基硫醇金纳米粒子的理论。随后将详细介绍近期以及选定的在毛细管电泳和开管电色谱分离中展示烷基硫醇金纳米粒子的应用。本综述将仅聚焦于基于烷基硫醇的金纳米粒子,因此与金纳米粒子结合的其他种类化学基团不在本综述范围内。最后,在最后一部分将详细概述这项令人兴奋的技术的未来前景。