Lee Jung Hun, Chun Jeong Hwan, Chung Hyun-Jong, Lee Wi Hyoung
Department of Materials Science and Engineering, Seoul National University, Seoul 08826, Korea.
Department of Organic and Nano System Engineering, Konkuk University, Seoul 05029, Korea.
Nanomaterials (Basel). 2022 Jul 26;12(15):2564. doi: 10.3390/nano12152564.
Microstructural control during the solution processing of small-molecule semiconductors (namely, soluble acene) is important for enhancing the performance of field-effect transistors (FET) and sensors. This focused review introduces strategies to enhance the gas-sensing properties (sensitivity, recovery, selectivity, and stability) of soluble acene FET sensors by considering their sensing mechanism. Defects, such as grain boundaries and crystal edges, provide diffusion pathways for target gas molecules to reach the semiconductor-dielectric interface, thereby enhancing sensitivity and recovery. Representative studies on grain boundary engineering, patterning, and pore generation in the formation of soluble acene crystals are reviewed. The phase separation and microstructure of soluble acene/polymer blends for enhancing gas-sensing performance are also reviewed. Finally, flexible gas sensors using soluble acenes and soluble acene/polymer blends are introduced, and future research perspectives in this field are suggested.
小分子半导体(即可溶性并苯)溶液处理过程中的微观结构控制对于提高场效应晶体管(FET)和传感器的性能至关重要。本聚焦综述介绍了通过考虑其传感机制来增强可溶性并苯FET传感器气敏特性(灵敏度、恢复率、选择性和稳定性)的策略。诸如晶界和晶体边缘等缺陷为目标气体分子到达半导体 - 电介质界面提供了扩散途径,从而提高了灵敏度和恢复率。综述了可溶性并苯晶体形成过程中晶界工程、图案化和孔隙生成的代表性研究。还综述了用于提高气敏性能的可溶性并苯/聚合物共混物的相分离和微观结构。最后,介绍了使用可溶性并苯和可溶性并苯/聚合物共混物的柔性气体传感器,并提出了该领域未来的研究前景。