Rico-Yuste Alberto, Carrasco Sergio
Independent Researcher, 28400 Madrid, Spain.
Department of Organic Chemistry, Arrhenius Laboratory, Stockholm University, SE-106 91 Stockholm, Sweden.
Polymers (Basel). 2019 Jul 11;11(7):1173. doi: 10.3390/polym11071173.
We report on the development of new optical sensors using molecularly imprinted polymers (MIPs) combined with different materials and explore the novel strategies followed in order to overcome some of the limitations found during the last decade in terms of performance. This review pretends to offer a general overview, mainly focused on the last 3 years, on how the new fabrication procedures enable the synthesis of hybrid materials enhancing not only the recognition ability of the polymer but the optical signal. Introduction describes MIPs as biomimetic recognition elements, their properties and applications, emphasizing on each step of the fabrication/recognition procedure. The state of the art is presented and the change in the publication trend between electrochemical and optical sensor devices is thoroughly discussed according to the new fabrication and micro/nano-structuring techniques paving the way for a new generation of MIP-based optical sensors. We want to offer the reader a different perspective based on the materials science in contrast to other overviews. Different substrates for anchoring MIPs are considered and distributed in different sections according to the dimensionality and the nature of the composite, highlighting the synergetic effect obtained as a result of merging both materials to achieve the final goal.
我们报告了使用分子印迹聚合物(MIP)与不同材料相结合开发新型光学传感器的情况,并探讨了为克服过去十年中在性能方面发现的一些局限性而采用的新策略。本综述旨在提供一个总体概述,主要聚焦于过去三年,介绍新的制备程序如何实现杂化材料的合成,不仅提高了聚合物的识别能力,还增强了光学信号。引言将MIP描述为仿生识别元件,介绍其性质和应用,重点阐述制备/识别过程的每一步。展示了当前的技术水平,并根据为新一代基于MIP的光学传感器铺平道路的新制备和微/纳米结构化技术,深入讨论了电化学和光学传感器设备之间出版趋势的变化。与其他综述不同,我们希望基于材料科学为读者提供一个不同的视角。考虑了用于固定MIP的不同基材,并根据复合材料的维度和性质在不同章节中进行了分类,突出了将两种材料合并以实现最终目标所获得的协同效应。