Wu Kai, Tonini Denis, Liang Shuang, Saha Renata, Chugh Vinit Kumar, Wang Jian-Ping
Department of Electrical and Computer Engineering, University of Minnesota, Minneapolis, Minnesota 55455, United States.
Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, United States.
ACS Appl Mater Interfaces. 2022 Mar 2;14(8):9945-9969. doi: 10.1021/acsami.1c20141. Epub 2022 Feb 15.
The giant magnetoresistance (GMR) effect has seen flourishing development from theory to application in the last three decades since its discovery in 1988. Nowadays, commercial devices based on the GMR effect, such as hard-disk drives, biosensors, magnetic field sensors, microelectromechanical systems (MEMS), etc., are available in the market, by virtue of the advances in state-of-the-art thin-film deposition and micro- and nanofabrication techniques. Different types of GMR biosensor arrays with superior sensitivity and robustness are available at a lower cost for a wide variety of biomedical applications. In this paper, we review the recent advances in GMR-based biomedical applications including disease diagnosis, genotyping, food and drug regulation, brain and cardiac mapping, etc. The GMR magnetic multilayer structure, spin valve, and magnetic granular structure, as well as fundamental theories of the GMR effect, are introduced at first. The emerging topic of flexible GMR for wearable biosensing is also included. Different GMR pattern designs, sensor surface functionalization, bioassay strategies, and on-chip accessories for improved GMR performances are reviewed. It is foreseen that combined with the state-of-the-art complementary metal-oxide-semiconductor (CMOS) electronics, GMR biosensors hold great promise in biomedicine, particularly for point-of-care (POC) disease diagnosis and wearable devices for real-time health monitoring.
自1988年巨磁电阻(GMR)效应被发现以来,在过去三十年中,它从理论到应用都得到了蓬勃发展。如今,凭借先进的薄膜沉积以及微纳加工技术,基于GMR效应的商业设备,如硬盘驱动器、生物传感器、磁场传感器、微机电系统(MEMS)等,已投放市场。不同类型的具有卓越灵敏度和稳健性的GMR生物传感器阵列,以较低成本适用于广泛的生物医学应用。在本文中,我们综述了基于GMR的生物医学应用的最新进展,包括疾病诊断、基因分型、食品和药物监管、脑图谱和心脏图谱等。首先介绍了GMR磁性多层结构、自旋阀和磁性颗粒结构,以及GMR效应的基本理论。还包括用于可穿戴生物传感的柔性GMR这一新兴主题。综述了不同的GMR图案设计、传感器表面功能化、生物检测策略以及用于改善GMR性能的片上附件。可以预见,结合最先进的互补金属氧化物半导体(CMOS)电子技术,GMR生物传感器在生物医学领域,特别是即时检测(POC)疾病诊断和用于实时健康监测的可穿戴设备方面,具有巨大的潜力。