异质结
光电子学
双极扩散
半导体
材料科学
有机半导体
纳米技术
数码产品
光伏
晶体管
工程物理
光伏系统
电气工程
物理
电压
电子
工程类
量子力学
作者
Yuhan Du,Qisheng Sun,Yiwen Ren,Lingjie Sun,Yidi Xie,Xianshuo Wu,Mingxing Zhang,Haiyan Zhang,Hongjuan Cheng,Ran Ding,Jing Feng,Fangxu Yang,Wenping Hu
标识
DOI:10.1002/admt.202500495
摘要
Abstract Organic semiconductor single‐crystal heterojunctions (OSSCHs) are engineered by integrating complementary organic semiconductor crystals to enable ambipolar transport and multifunctional device performance. This review outlines recent progress in the crystal growth, interface physics, and device applications of OSSCHs, with an emphasis on low‐dimensional structures achieved through controlled crystallization and advanced interface engineering. Innovations in crystallization control, such as integrated self‐assembly and van der Waals epitaxy, have enabled the construction of defect‐minimized heterointerfaces with molecular‐level precision. Emerging strategies in low‐dimensional engineering, including vertically stacked heterostructures and ultrathin 2D molecular crystals, have optimized carrier dynamics while introducing unique optoelectronic properties. The engineered band alignment at heterointerfaces critically governs exciton dissociation efficiency and charge transport pathways, directly enhancing device performance in photovoltaics and light‐emitting systems. These heterojunctions demonstrate promising applications across ambipolar transistors, light‐emitting devices, and neuromorphic electronics by overcoming the inherent limitations of unipolar active layers. The review also highlights current challenges and future research directions, emphasizing the role of OSSCHs in advancing the fields of materials science and optoelectronic device engineering.
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