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嵌入分子开关的溶液处理半导体

Molecular-Switch-Embedded Solution-Processed Semiconductors.

作者信息

Yu Seong Hoon, Hassan Syed Zahid, So Chan, Kang Mingyun, Chung Dae Sung

机构信息

Department of Chemical Engineering, Pohang University of Science & Technology (POSTECH), Pohang, 37673, Republic of Korea.

出版信息

Adv Mater. 2023 Jan;35(4):e2203401. doi: 10.1002/adma.202203401. Epub 2022 Nov 23.

Abstract

Recent improvements in the performance of solution-processed semiconductor materials and optoelectronic devices have shifted research interest to the diversification/advancement of their functionality. Embedding a molecular switch capable of transition between two or more metastable isomers by light stimuli is one of the most straightforward and widely accepted methods to potentially realize the multifunctionality of optoelectronic devices. A molecular switch embedded in a semiconductor can effectively control various parameters such as trap-level, dielectric constant, electrical resistance, charge mobility, and charge polarity, which can be utilized in photoprogrammable devices including transistors, memory, and diodes. This review classifies the mechanism of each optoelectronic transition driven by molecular switches regardless of the type of semiconductor material or molecular switch or device. In addition, the basic characteristics of molecular switches and the persisting technical/scientific issues corresponding to each mechanism are discussed to help researchers. Finally, interesting yet infrequently reported applications of molecular switches and their mechanisms are also described.

摘要

溶液处理的半导体材料和光电器件性能的近期改善已将研究兴趣转向其功能的多样化/提升。嵌入一种能够通过光刺激在两种或更多种亚稳异构体之间转变的分子开关,是潜在实现光电器件多功能性的最直接且被广泛接受的方法之一。嵌入半导体中的分子开关可以有效地控制各种参数,如陷阱能级、介电常数、电阻、电荷迁移率和电荷极性,这些参数可用于包括晶体管、存储器和二极管在内的光可编程器件。本综述对由分子开关驱动的每种光电跃迁的机制进行了分类,而不考虑半导体材料、分子开关或器件的类型。此外,还讨论了分子开关的基本特性以及与每种机制相对应的持续存在的技术/科学问题,以帮助研究人员。最后,还描述了分子开关及其机制有趣但报道较少的应用。

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