Lapalikar Vaidehi, Dacha Preetam, Hambsch Mike, Hofstetter Yvonne J, Vaynzof Yana, Mannsfeld Stefan C B, Ruck Michael
Faculty of Chemistry and Food Chemistry, Technische Universität Dresden 01062 Dresden Germany
Faculty of Electrical and Computer Engineering, Technische Universität Dresden 01069 Dresden Germany.
J Mater Chem C Mater. 2023 Dec 21;12(4):1366-1376. doi: 10.1039/d3tc03443g. eCollection 2024 Jan 25.
Bismuth oxide iodide (BiOI) has been viewed as a suitable environmentally-friendly alternative to lead-halide perovskites for low-cost (opto-)electronic applications such as photodetectors, phototransistors and sensors. To enable its incorporation in these devices in a convenient, scalable, and economical way, BiOI thin films were investigated as part of heterojunctions with various p-type organic semiconductors (OSCs) and tested in a field-effect transistor (FET) configuration. The hybrid heterojunctions, which combine the respective functionalities of BiOI and the OSCs were processed from solution under ambient atmosphere. The characteristics of each of these hybrid systems were correlated with the physical and chemical properties of the respective materials using a concept based on heteropolar chemical interactions at the interface. Systems suitable for application in lateral transport devices were identified and it was demonstrated how materials in the hybrids interact to provide improved and synergistic properties. These indentified heterojunction FETs are a first instance of successful incorporation of solution-processed BiOI thin films in a three-terminal device. They show a significant threshold voltage shift and retained carrier mobility compared to pristine OSC devices and open up possibilities for future optoelectronic applications.
碘化铋(BiOI)被视为一种适合用于低成本(光)电子应用(如光电探测器、光电晶体管和传感器)的环境友好型卤化铅钙钛矿替代品。为了以方便、可扩展且经济的方式将其纳入这些器件中,对BiOI薄膜作为与各种p型有机半导体(OSC)的异质结的一部分进行了研究,并在场效应晶体管(FET)配置中进行了测试。结合了BiOI和OSC各自功能的混合异质结是在环境气氛下从溶液中制备的。利用基于界面处异极化学相互作用的概念,将这些混合系统中每一个的特性与各自材料的物理和化学性质相关联。确定了适用于横向传输器件的系统,并展示了混合材料中的材料如何相互作用以提供改进的协同特性。这些确定的异质结FET是在三端器件中成功纳入溶液处理的BiOI薄膜的首个实例。与原始OSC器件相比,它们显示出显著的阈值电压偏移和保留的载流子迁移率,并为未来的光电应用开辟了可能性。