材料科学
测距
光电探测器
响应度
热电性
钙钛矿(结构)
皮秒
光电子学
激光雷达
光电二极管
雪崩光电二极管
灵敏度(控制系统)
探测器
加速度
光学
激光器
铁电性
电子工程
化学工程
电介质
经典力学
工程类
计算机科学
物理
电信
作者
Liangliang Min,Haoxuan Sun,Linqi Guo,Yicheng Zhou,Meng Wang,Fengren Cao,Liang Li
标识
DOI:10.1002/adma.202400279
摘要
Abstract Light detection and ranging (LiDAR) is indispensable in applications such as unmanned aerial vehicles, autonomous driving, and biomimetic robots. However, the precision and available distance of LiDAR are constrained by the speed and sensitivity of the photodetector, necessitating the use of expensive and energy‐consuming avalanche diodes. To address these challenges, in this study, a pyroelectricity‐based acceleration strategy with 2D‐(graded 3D) perovskite heterojunction is proposed to achieve a record high speed (27.7 ns with an active area of 9 mm 2 , and 176 ps with an active area of 0.2 mm 2 ) and high responsivity (0.65 A W −1 ) at zero bias. This success is attributed to the unique mechanism where the electrons from the pyroelectric effect at the Cl‐rich 2D/3D interface directly recombine with excess holes during light–dark transitions, breaking speed limitations related to carrier mobility and capacitive effect. Furthermore, the introduced pyroelectric effect significantly enhances the photoresponse, resulting in a self‐powered external quantum efficiency exceeding 100%. The study also demonstrates precise position detection at the centimeter level. In conclusion, this research presents a pioneering approach for developing high‐speed photodiodes with exceptional sensitivity, mitigating energy and cost concerns in LiDAR applications.
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