激光雷达
测距
收发机
光束转向
基点
炸薯条
相控阵
计算机科学
光电探测器
相控阵光学
光学
天线(收音机)
天线阵
梁(结构)
电子工程
计算机硬件
自由空间光通信
帧速率
航程(航空)
激光器
遥感
芯片上的系统
通信系统
作者
Yingzhi Li,Bingxu Chen,Xuetong Li,Ziming Wang,Jie Li,Xiangyi Sun,Haolun Du,H. Martin Hu,Huan Qu,Weipeng Wang,Zihao Zhi,Min Tao,Xiaolong Hu,xueyan li,Junfeng Song
标识
DOI:10.1002/lpor.202503167
摘要
ABSTRACT Light detection and ranging (LiDAR) plays a critical role in autonomous driving, robotics, and 3D environmental sensing. However, existing LiDAR systems that rely on mechanical beam steering are limited in size, weight, and stability, while conventional optical phased array based solid‐state LiDAR suffers from high insertion loss and limited frame rate imposed by serial beam steering. To address these issues, we present a solid‐state LiDAR system based on a Si‐SiN focal plane switch array (FPSA) chip that, for the first time, enables parallel 4D imaging by simultaneously activating a complete row of transceiver units. The chip monolithically integrates a 1 × 64 thermo‐optic switching network and an 8 × 8 transceiver antenna array with Ge/Si balanced photodetectors (BPDs), realizing on‐chip integration of beam emission, steering, and coherent detection. The LiDAR system achieves a ranging precision of 44.45 µm at meter‐level distances. In addition, a maximum detectable distance of 100.82 m is demonstrated for Lambertian targets with 10% reflectivity. The high ranging precision and long‐distance detection capability of the proposed system position the FPSA architecture to meet the diverse performance requirements of next‐generation solid‐state LiDAR across a broad range of applications.
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