Liu Jie, Su Li, Zhang Xinglong, Shtansky Dmitry V, Fang Xiaosheng
Department of Materials Science, State Key Laboratory of Molecular Engineering of Polymers, Institute of Optoelectronics, Fudan University, Shanghai, 200438, P. R. China.
National University of Science and Technology "MISIS", Moscow, 119049, Russia.
Small Methods. 2024 Feb;8(2):e2300319. doi: 10.1002/smtd.202300319. Epub 2023 Jun 13.
Photodetectors (PDs), as functional devices based on photon-to-electron conversion, are an indispensable component for the next-generation Internet of Things system. The research of advanced and efficient PDs that meet the diverse demands is becoming a major task. Ferroelectric materials can develop a unique spontaneous polarization due to the symmetry-breaking of the unit cell, which is switchable under an external electric field. Ferroelectric polarization field has the intrinsic characteristics of non-volatilization and rewritability. Introducing ferroelectrics to effectively manipulate the band bending and carrier transport can be non-destructive and controllable in the ferroelectric-optoelectronic hybrid systems. Hence, ferroelectric integration offers a promising strategy for high-performance photoelectric detection. This paper reviews the fundamentals of optoelectronic and ferroelectric materials, and their interactions in hybrid photodetection systems. The first section introduces the characteristics and applications of typical optoelectronic and ferroelectric materials. Then, the interplay mechanisms, modulation effects, and typical device structures of ferroelectric-optoelectronic hybrid systems are discussed. Finally, in summary and perspective section, the progress of ferroelectrics integrated PDs is summed up and the challenges of ferroelectrics in the field of optoelectronics are considered.
光电探测器(PDs)作为基于光子到电子转换的功能器件,是下一代物联网系统不可或缺的组成部分。研究满足各种需求的先进高效光电探测器正成为一项主要任务。铁电材料由于晶胞对称性破缺可产生独特的自发极化,且在外部电场作用下可切换。铁电极化场具有非挥发和可重写的固有特性。在铁电 - 光电混合系统中引入铁电体以有效调控能带弯曲和载流子输运具有无损且可控的特点。因此,铁电集成提供了一种实现高性能光电探测的有前景的策略。本文综述了光电材料和铁电材料的基本原理,以及它们在混合光电探测系统中的相互作用。第一部分介绍了典型光电材料和铁电材料的特性及应用。然后,讨论了铁电 - 光电混合系统的相互作用机制、调制效应和典型器件结构。最后,在总结与展望部分,总结了铁电集成光电探测器的进展,并探讨了铁电体在光电子领域面临的挑战。