Tan Siew Ting Melissa, Gumyusenge Aristide, Quill Tyler James, LeCroy Garrett Swain, Bonacchini Giorgio Ernesto, Denti Ilaria, Salleo Alberto
Department of Materials Science and Engineering, Stanford University, Stanford, CA, 94305, USA.
Center for Nano Science and Technology @PoliMi, Istituto Italiano di Tecnologia, Via Giovanni Pascoli, 70/3, Milano, 20133, Italy.
Adv Mater. 2022 May;34(21):e2110406. doi: 10.1002/adma.202110406. Epub 2022 Apr 18.
Organic mixed ionic-electronic conductors (OMIECs) have gained recent interest and rapid development due to their versatility in diverse applications ranging from sensing, actuation and computation to energy harvesting/storage, and information transfer. Their multifunctional properties arise from their ability to simultaneously participate in redox reactions as well as modulation of ionic and electronic charge density throughout the bulk of the material. Most importantly, the ability to access charge states with deep modulation through a large extent of its density of states and physical volume of the material enables OMIEC-based devices to display exciting new characteristics and opens up new degrees of freedom in device design. Leveraging the infinite possibilities of the organic synthetic toolbox, this perspective highlights several chemical and structural design approaches to modify OMIECs' properties important in device applications such as electronic and ionic conductivity, color, modulus, etc. Additionally, the ability for OMIECs to respond to external stimuli and transduce signals to myriad types of outputs has accelerated their development in smart systems. This perspective further illustrates how various stimuli such as electrical, chemical, and optical inputs fundamentally change OMIECs' properties dynamically and how these changes can be utilized in device applications.
有机混合离子 - 电子导体(OMIECs)近年来因其在从传感、驱动和计算到能量收集/存储以及信息传输等各种应用中的多功能性而受到关注并得到快速发展。它们的多功能特性源于其能够同时参与氧化还原反应以及在整个材料本体中调节离子和电子电荷密度。最重要的是,通过材料的态密度和物理体积在很大程度上进行深度调制来获得电荷态的能力,使基于OMIEC的器件展现出令人兴奋的新特性,并在器件设计中开辟了新的自由度。利用有机合成工具箱的无限可能性,本观点强调了几种化学和结构设计方法,以改变OMIEC在器件应用中重要的特性,如电子和离子导电性、颜色、模量等。此外,OMIEC对外部刺激做出响应并将信号转换为多种类型输出的能力加速了它们在智能系统中的发展。本观点进一步阐述了诸如电、化学和光输入等各种刺激如何从根本上动态改变OMIEC的特性,以及这些变化如何在器件应用中得到利用。