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将纳米材料传感层集成到可打印有机场效应晶体管上,用于高灵敏度和稳定的生化信号转换。

Integration of nanomaterial sensing layers on printable organic field effect transistors for highly sensitive and stable biochemical signal conversion.

机构信息

School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

Nanoscale. 2023 Mar 23;15(12):5537-5559. doi: 10.1039/d2nr05863d.

Abstract

Organic field effect transistor (OFET) devices are one of the most popular candidates for the development of biochemical sensors due to their merits of being flexible and highly customizable for low-cost large-area manufacturing. This review describes the key points in constructing an extended-gate type OFET (EGOFET) biochemical sensor with high sensitivity and stability. The structure and working mechanism of OFET biochemical sensors are described firstly, emphasizing the importance of critical material and device engineering to higher biochemical sensing capabilities. Next, printable materials used to construct sensing electrodes (SEs) with high sensitivity and stability are presented with a focus on novel nanomaterials. Then, methods of obtaining printable OFET devices with steep subthreshold swing (SS) for high transconductance efficiency are introduced. Finally, approaches for the integration of OFETs and SEs to form portable biochemical sensor chips are introduced, followed by several demonstrations of sensory systems. This review will provide guidelines for optimizing the design and manufacturing of OFET biochemical sensors and accelerating the movement of OFET biochemical sensors from the laboratory to the marketplace.

摘要

有机场效应晶体管(OFET)器件因其具有灵活、可高度定制化、适用于低成本大面积制造等优点,成为生化传感器发展的热门候选者之一。本综述描述了构建具有高灵敏度和稳定性的扩展栅极型 OFET(EGOFET)生化传感器的关键点。首先介绍了 OFET 生化传感器的结构和工作机制,强调了关键材料和器件工程对于提高生化传感性能的重要性。接着,重点介绍了用于构建具有高灵敏度和稳定性的传感电极(SE)的可打印材料,包括新型纳米材料。然后,介绍了获得具有陡峭亚阈值摆幅(SS)的可打印 OFET 器件的方法,以实现高跨导效率。最后,介绍了将 OFET 和 SE 集成形成便携式生化传感器芯片的方法,并展示了几个传感系统的实例。本综述将为优化 OFET 生化传感器的设计和制造提供指导,并加速 OFET 生化传感器从实验室走向市场。

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