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用于生物技术的功能化介孔薄膜

Functionalized Mesoporous Thin Films for Biotechnology.

作者信息

Sartori Barbara, Amenitsch Heinz, Marmiroli Benedetta

机构信息

Institute of Inorganic Chemistry, Graz University of Technology, 8010 Graz, Austria.

出版信息

Micromachines (Basel). 2021 Jun 24;12(7):740. doi: 10.3390/mi12070740.

Abstract

Mesoporous materials bear great potential for biotechnological applications due to their biocompatibility and versatility. Their high surface area and pore interconnection allow the immobilization of molecules and their subsequent controlled delivery. Modifications of the mesoporous material with the addition of different chemical species, make them particularly suitable for the production of bioactive coatings. Functionalized thin films of mesoporous silica and titania can be used as scaffolds with properties as diverse as promotion of cell growth, inhibition of biofilms formation, or development of sensors based on immobilized enzymes. The possibility to pattern them increase their appeal as they can be incorporated into devices and can be tailored both with respect to architecture and functionalization. In fact, selective surface manipulation is the ground for the fabrication of advanced micro devices that combine standard micro/nanofluids with functional materials. In this review, we will present the advantages of the functionalization of silica and titania mesoporous materials deposited in thin film. Different functional groups used to modify their properties will be summarized, as well as functionalization methods and some examples of applications of modified materials, thus giving an overview of the essential role of functionalization to improve the performance of such innovative materials.

摘要

介孔材料因其生物相容性和多功能性在生物技术应用方面具有巨大潜力。它们的高比表面积和孔互连性使得分子能够固定,并随后实现可控释放。通过添加不同化学物质对介孔材料进行改性,使其特别适合用于制备生物活性涂层。介孔二氧化硅和二氧化钛的功能化薄膜可用作支架,具有促进细胞生长、抑制生物膜形成或开发基于固定化酶的传感器等多种特性。对它们进行图案化处理的可能性增加了其吸引力,因为它们可以被整合到器件中,并且在结构和功能化方面都可以进行定制。事实上,选择性表面处理是制造将标准微纳流体与功能材料相结合的先进微器件的基础。在本综述中,我们将介绍沉积在薄膜中的二氧化硅和二氧化钛介孔材料功能化的优势。将总结用于改性其性能的不同官能团,以及功能化方法和改性材料的一些应用实例,从而概述功能化对提高此类创新材料性能的重要作用。

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