Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China.
Chem Soc Rev. 2016 Apr 21;45(8):2137-211. doi: 10.1039/c6cs00061d. Epub 2016 Mar 3.
Molecular imprinting technology (MIT), often described as a method of making a molecular lock to match a molecular key, is a technique for the creation of molecularly imprinted polymers (MIPs) with tailor-made binding sites complementary to the template molecules in shape, size and functional groups. Owing to their unique features of structure predictability, recognition specificity and application universality, MIPs have found a wide range of applications in various fields. Herein, we propose to comprehensively review the recent advances in molecular imprinting including versatile perspectives and applications, concerning novel preparation technologies and strategies of MIT, and highlight the applications of MIPs. The fundamentals of MIPs involving essential elements, preparation procedures and characterization methods are briefly outlined. Smart MIT for MIPs is especially highlighted including ingenious MIT (surface imprinting, nanoimprinting, etc.), special strategies of MIT (dummy imprinting, segment imprinting, etc.) and stimuli-responsive MIT (single/dual/multi-responsive technology). By virtue of smart MIT, new formatted MIPs gain popularity for versatile applications, including sample pretreatment/chromatographic separation (solid phase extraction, monolithic column chromatography, etc.) and chemical/biological sensing (electrochemical sensing, fluorescence sensing, etc.). Finally, we propose the remaining challenges and future perspectives to accelerate the development of MIT, and to utilize it for further developing versatile MIPs with a wide range of applications (650 references).
分子印迹技术(MIT),常被描述为制作分子锁以匹配分子钥匙的方法,是一种用于创建具有与模板分子形状、大小和官能团互补的定制结合位点的分子印迹聚合物(MIPs)的技术。由于其结构可预测性、识别特异性和应用普遍性的独特特点,MIPs 在各个领域得到了广泛的应用。在此,我们全面综述了分子印迹的最新进展,包括多方面的视角和应用,涉及新型制备技术和策略的 MIT,并强调了 MIPs 的应用。简要概述了 MIPs 的基本原理,包括基本要素、制备程序和表征方法。特别强调了智能 MIT 用于 MIPs,包括巧妙的 MIT(表面印迹、纳米印迹等)、特殊的 MIT 策略(虚拟印迹、分段印迹等)和响应性 MIT(单/双/多响应技术)。通过智能 MIT,新型格式化的 MIPs 因其多功能应用而受到欢迎,包括样品预处理/色谱分离(固相萃取、整体柱色谱等)和化学/生物传感(电化学传感、荧光传感等)。最后,我们提出了剩余的挑战和未来展望,以加速 MIT 的发展,并利用它进一步开发具有广泛应用的多功能 MIPs(650 篇参考文献)。