光电探测器
材料科学
响应度
异质结
光电子学
量子效率
带隙
比探测率
极化(电化学)
各向异性
光学
物理
物理化学
化学
作者
Yahui Li,Mengqi Che,Nan Zhang,Yuting Zou,Xingyu Zhao,Yucai Lin,Bingchen Lv,Xiaobao Ma,Yaru Shi,Jianjun Yang,Xiaojuan Sun,Shaojuan Li,Dabing Li
标识
DOI:10.1002/adom.202302339
摘要
Abstract Band alignment engineering in 2D van der Waals heterostructures is a promising method for manufacturing high‐speed, high‐responsivity, and high‐gain photodetectors. Here, a heterojunction photodetector with the band alignment transition from type I to type II under the bias voltage using narrow bandgap material n‐Bi 2 Se 3 and polarization‐sensitive material p‐GeSe is designed and prepared. This photodetector possesses excellent performance of broadband detection (532‐1550 nm), high responsivity (5.86 × 10 3 A W −1 ), high detectivity (1.50 × 10 13 Jones), significant external quantum efficiency (1.15 × 10 6 %) and fast response time (97 µs). Compared with the conventional type II band alignment, an additional triangular potential barrier is generated in this type II band alignment evolved from type I. Notably, this triangular barrier will block photogenerated carriers in Bi 2 Se 3 , which leads to high external quantum efficiency; Furthermore, photogenerated holes can tunnel through this barrier, effectively shortening the response time. Meanwhile, the device can achieve polarization detection (anisotropic ratio = 1.74 at 808 nm) and polarization imaging, which is of great significance for reducing the bit error rate in complex environments.
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