Interdisciplinary Materials Research Center, School of Materials Science and Engineering, Tongji University, Shanghai, 201804, P. R. China.
Putuo District People's Hospital, Tongji University, Shanghai, 200060, P. R. China.
Small. 2019 Mar;15(12):e1805196. doi: 10.1002/smll.201805196. Epub 2019 Feb 7.
Benefiting from the advantages of organic field-effect transistors (OFETs), including synthetic versatility of organic molecular design and environmental sensitivity, gas sensors based on OFETs have drawn much attention in recent years. Potential applications focus on the detection of specific gas species such as explosive, toxic gases, or volatile organic compounds (VOCs) that play vital roles in environmental monitoring, industrial manufacturing, smart health care, food security, and national defense. To achieve high sensitivity, selectivity, and ambient stability with rapid response and recovery speed, the regulation and adjustment of the nano/microstructure of the organic semiconductor (OSC) layer has proven to be an effective strategy. Here, the progress of OFET gas sensors with nano/microstructure is selectively presented. Devices based on OSC films one dimensional (1D) single crystal nanowires, nanorods, and nanofibers are introduced. Then, devices based on two dimensional (2D) and ultrathin OSC films, fabricated by methods such as thermal evaporation, dip-coating, spin-coating, and solution-shearing methods are presented, followed by an introduction of porous OFET sensors. Additionally, the applications of nanostructured receptors in OFET sensors are given. Finally, an outlook in view of the current research state is presented and eight further challenges for gas sensors based on OFETs are suggested.
受益于有机场效应晶体管(OFET)的优势,包括有机分子设计的合成多功能性和环境敏感性,基于 OFET 的气体传感器近年来受到了广泛关注。潜在的应用集中在检测特定的气体种类,如爆炸物、有毒气体或挥发性有机化合物(VOC),这些气体在环境监测、工业制造、智能医疗保健、食品安全和国防中起着至关重要的作用。为了实现高灵敏度、选择性和环境稳定性,以及快速的响应和恢复速度,对有机半导体(OSC)层的纳米/微观结构进行调控和调整已被证明是一种有效的策略。本文选择性地介绍了具有纳米/微观结构的 OFET 气体传感器的进展。介绍了基于 OSC 薄膜一维(1D)单晶纳米线、纳米棒和纳米纤维的器件。然后,介绍了基于二维(2D)和超薄 OSC 薄膜的器件,这些薄膜是通过热蒸发、浸涂、旋涂和溶液剪切等方法制备的,接着介绍了多孔 OFET 传感器。此外,还介绍了纳米结构受体在 OFET 传感器中的应用。最后,根据当前的研究状况提出了展望,并提出了基于 OFET 的气体传感器面临的八个进一步挑战。