Sun Hongyu, Li Dujuan, Yue Xiaojie, Hong Rui, Yang Weihuang, Liu Chaoran, Xu Hong, Lu Jun, Dong Linxi, Wang Gaofeng, Li Dongyang
Ministry of Education Engineering Research Center of Smart Microsensors and Microsystems, School of Electronic Information, Hangzhou Dianzi University, Hangzhou, China.
School of Automation, Hangzhou Dianzi University, Hangzhou, China.
Front Bioeng Biotechnol. 2022 Jun 13;10:941135. doi: 10.3389/fbioe.2022.941135. eCollection 2022.
Transition metal dichalcogenides (TMDCs) are widely used in biosensing applications due to their excellent physical and chemical properties. Due to the properties of biomaterial targets, the biggest challenge that biosensors face now is how to improve the sensitivity and stability. A lot of materials had been used to enhance the target signal. Among them, TMDCs show excellent performance in enhancing biosensing signals because of their metallic and semi-conducting electrical capabilities, tunable band gap, large specific surface area and so on. Here, we review different functionalization methods and research progress of TMDCs-based biosensors. The modification methods of TMDCs for biosensor fabrication mainly include two strategies: non-covalent and covalent interaction. The article summarizes the advantages and disadvantages of different modification strategies and their effects on biosensing performance. The authors present the challenges and issues that TMDCs need to be addressed in biosensor applications. Finally, the review expresses the positive application prospects of TMDCs-based biosensors in the future.
过渡金属二硫属化物(TMDCs)因其优异的物理和化学性质而被广泛应用于生物传感领域。由于生物材料靶标的特性,生物传感器目前面临的最大挑战是如何提高灵敏度和稳定性。许多材料已被用于增强靶标信号。其中,TMDCs因其金属和半导体电学性能、可调带隙、大比表面积等,在增强生物传感信号方面表现出优异性能。在此,我们综述了基于TMDCs的生物传感器的不同功能化方法和研究进展。用于制造生物传感器的TMDCs修饰方法主要包括两种策略:非共价和共价相互作用。本文总结了不同修饰策略的优缺点及其对生物传感性能的影响。作者提出了TMDCs在生物传感器应用中需要解决的挑战和问题。最后,该综述表达了基于TMDCs的生物传感器在未来积极的应用前景。