García-Faustino Litzy L, Morris Stephen M, Elston Steve J, Montelongo Yunuen
School of Engineering and Sciences, Tecnológico de Monterrey, Ave. Eugenio Garza Sada 2501, Monterrey, NL, 64849, Mexico.
Department of Engineering Science, University of Oxford, Parks Road, Oxford, OX1 3PJ, UK.
Small Methods. 2024 Jan;8(1):e2301025. doi: 10.1002/smtd.202301025. Epub 2023 Oct 9.
Over the past decade, there has been a rising interest in utilizing functionalized porous polymers for sensor applications. By incorporating functional groups into nanostructured materials like hydrogels, nanosheets, and nanopores, exciting new opportunities have emerged for biomarker detection. The ability of functionalized polymers to undergo physical changes and deformations makes them perfect for modulating optical signals. This chemical mechanism enables the creation of biocompatible sensors for in situ biomarker measurement. Here a comprehensive overview of the current publication trends is provided in functionalized polymers, encompassing functional groups that can induce measurable physical deformations. It explores various materials categorized based on their detection targets, which include proteins, carbohydrates, ions, and deoxyribonucleic acid. As such, this work serves as a valuable reference for the development of functionalized polymer-based sensors.
在过去十年中,人们对将功能化多孔聚合物用于传感器应用的兴趣日益浓厚。通过将官能团引入水凝胶、纳米片和纳米孔等纳米结构材料中,生物标志物检测出现了令人兴奋的新机遇。功能化聚合物发生物理变化和变形的能力使其非常适合调制光信号。这种化学机制能够创建用于原位生物标志物测量的生物相容性传感器。本文全面概述了功能化聚合物当前的出版趋势,涵盖了能够引起可测量物理变形的官能团。它探讨了根据检测目标分类的各种材料,这些目标包括蛋白质、碳水化合物、离子和脱氧核糖核酸。因此,这项工作为基于功能化聚合物的传感器的开发提供了有价值的参考。