Materials Science and Engineering Department, University of Washington, Seattle, Washington 98195, United States.
Department of Chemistry, University of Oxford, Oxford OX1 3TA, United Kingdom.
Chem Rev. 2022 Feb 23;122(4):4325-4355. doi: 10.1021/acs.chemrev.1c00266. Epub 2021 Dec 13.
Expanding the toolbox of the biology and electronics mutual conjunction is a primary aim of bioelectronics. The organic electrochemical transistor (OECT) has undeniably become a predominant device for mixed conduction materials, offering impressive transconduction properties alongside a relatively simple device architecture. In this review, we focus on the discussion of recent material developments in the area of mixed conductors for bioelectronic applications by means of thorough structure-property investigation and analysis of current challenges. Fundamental operation principles of the OECT are revisited, and characterization methods are highlighted. Current bioelectronic applications of organic mixed ionic-electronic conductors (OMIECs) are underlined. Challenges in the performance and operational stability of OECT channel materials as well as potential strategies for mitigating them, are discussed. This is further expanded to sketch a synopsis of the history of mixed conduction materials for both p- and n-type channel operation, detailing the synthetic challenges and milestones which have been overcome to frequently produce higher performing OECT devices. The cumulative work of multiple research groups is summarized, and synthetic design strategies are extracted to present a series of design principles that can be utilized to drive figure-of-merit performance values even further for future OMIEC materials.
拓展生物学和电子学相互结合的工具是生物电子学的主要目标。有机电化学晶体管 (OECT) 无疑已成为混合传导材料的主要器件,提供了令人印象深刻的跨导特性和相对简单的器件结构。在这篇综述中,我们重点讨论了通过深入的结构-性质研究和对当前挑战的分析,在生物电子应用领域混合导体方面的最新材料进展。我们重新审视了 OECT 的基本工作原理,并强调了其特征化方法。突出了有机混合离子-电子导体 (OMIEC) 的当前生物电子应用。讨论了 OECT 沟道材料在性能和工作稳定性方面的挑战,以及缓解这些挑战的潜在策略。进一步扩展到概述用于 p 型和 n 型沟道操作的混合传导材料的历史,详细介绍了克服的合成挑战和里程碑,以经常生产出性能更高的 OECT 器件。总结了多个研究小组的综合工作,并提取了合成设计策略,提出了一系列设计原则,可用于进一步提高未来 OMIEC 材料的性能指标值。