Lee Seonjeong, Lee Han Ju, Ji Yena, Lee Keun Hyung, Hong Kihyon
Department of Materials Science and Engineering, Chungnam National University (CNU), Daejeon, 34134, Republic of Korea.
Department of Chemistry and Chemical Engineering, Education and Research Center for Smart Energy and Materials, Inha University, Incheon, 22212, Republic of Korea.
Adv Mater. 2021 Feb;33(5):e2005456. doi: 10.1002/adma.202005456. Epub 2020 Dec 20.
Light-emitting transistors (LETs) have attracted a significant amount of interest as multifunctional building blocks for next-generation electronics and optoelectronic devices. However, it is challenging to obtain LETs with a high carrier mobility and uniform light-emission because the semiconductor channel should provide both the electrical charge transport and optical light-emission, and typical emissive semiconductors have low, imbalanced carrier mobilities. In this work, a novel device platform that adapts the electrochemiluminescence (ECL) principle in LETs, referred to as an ECL transistor (ECLT) is proposed. ECL is a light-emission phenomenon from electrochemically excited luminophores generated by redox reactions. A solid-state ECL electrolyte consisting of a network-forming polymer, ionic liquid, luminophore, and co-reactant is employed as the light-emitting gate insulator of the ECLT. Based on this construction, high-performance LETs that make use of various conventional non-emissive semiconductors (e.g., poly(3-hexylthiophene), zinc oxide, and reduced graphene oxide) are successfully demonstrated. All the devices exhibit a high mobility (0.9-10 cm V s ) and a uniform light-emission. This innovative approach demonstrates a novel LET platform and provides a promising pathway to achieve significant breakthroughs to develop electronic circuits and optoelectronic applications.
发光晶体管(LETs)作为下一代电子和光电器件的多功能构建模块,已引起了广泛关注。然而,要获得具有高载流子迁移率和均匀发光的发光晶体管具有挑战性,因为半导体沟道既要提供电荷传输又要提供光发射,而典型的发光半导体具有低且不平衡的载流子迁移率。在这项工作中,提出了一种在发光晶体管中采用电化学发光(ECL)原理的新型器件平台,称为电化学发光晶体管(ECLT)。电化学发光是由氧化还原反应产生的电化学激发发光体的发光现象。一种由网络形成聚合物、离子液体、发光体和共反应物组成的固态ECL电解质被用作电化学发光晶体管的发光栅极绝缘体。基于这种结构,成功展示了利用各种传统非发光半导体(如聚(3-己基噻吩)、氧化锌和还原氧化石墨烯)的高性能发光晶体管。所有器件均表现出高迁移率(0.9 - 10 cm V s)和均匀发光。这种创新方法展示了一种新型发光晶体管平台,并为在开发电子电路和光电器件应用方面取得重大突破提供了一条有前景的途径。