同质结
材料科学
光电探测器
光电子学
铌酸锂
响应度
铁电性
兴奋剂
光电效应
制作
电场
比探测率
光电效应
光伏系统
光电二极管
探测器
光通信
光学
场效应
量子效率
量子隧道
载流子
作者
Bo Wen,Jianyong Li,Jiawen Huang,Chao‐Dong Zhu,Chujie Wang,Wei Xia,Zhi Chen,Hualong Chen,Xi Zhang,Han Zhang
标识
DOI:10.1002/adfm.202519097
摘要
Abstract This paper proposes a high‐performance photodetector based on a ferroelectric‐modulated homojunction coupled by periodically poled lithium niobate (PPLN) and WSe 2 . Through the synergistic effect of interface engineering and a periodic ferroelectric substrate, non‐volatile electrostatic doping of WSe 2 is achieved, and a periodic homojunction with a built‐in electric field is constructed on the intrinsic material. This design overcomes the limitations of lattice mismatch and interfacial defects in traditional vertical heterojunctions, significantly enhancing carrier separation efficiency. Under 512 nm illumination, the device achieves an ultra‐high responsivity of 37.1 A W −1 , a specific detectivity of 2.46 × 10 14 Jones, and a fast response time of 150 µs, with comprehensive performance surpassing most 2D material photodetectors. Its excellent performance stems from the synergistic effect of ferroelectric‐induced carrier modulation and the photovoltaic effect of the homojunction. The non‐volatile doping strategy provides a new scheme for large‐scale fabrication and environmental stability of devices, holding significant application potential in the fields of photoelectric sensing and imaging. This study provides a brand‐new approach for the high‐performance optimization of 2D material optoelectronic devices through ferroelectric domain engineering.
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