用于高性能激光雷达的无杂散宽带连续时间电光锁相环(CT-EOPLL)

Ali Binaie;Sohail Ahasan;Harish Krishnaswamy
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引用次数: 0

摘要

调频连续波(FMCW)激光雷达系统由于其在自动驾驶、机器感知、快速原型设计和医疗诊断方面的潜在应用而引起人们越来越多的兴趣。激光器输入输出传递函数的非线性会降低FMCW激光雷达的性能。然而,传统的离散时间电光锁相环(DT EOPLL)面临着啁啾带宽和马赫-曾德尔延迟之间的不利权衡。为了解决这个问题,我们提出了一种集成的连续时间电光锁相环(CT-EOPLL)。所提出的EOPLL是非常宽带的,其环路带宽等于其参考频率。这一特性使其能够将啁啾带宽和马赫-曾德尔(MZ)延迟之间的权衡放宽10倍,从而减少了与硅光子延迟实现相关的面积和损耗。它也没有受到宽带PLL中杂散的挑战性问题的影响,因为它的特点是使用单边带(SSB)和谐波抑制(HR)混合技术在环路中抑制图像和谐波杂散。该EOPLL的电气部分采用65nm CMOS技术实现,其光学集成电路采用硅光子工艺制造。该EOPLL具有超过25dB的最高杂散抑制功能,可用于高精度激光雷达传感器,在2米距离处显示出558~\mu\text{m}$的RMS深度精度,在超过3.3米的范围内显示出9.4mm的RMS深度分辨率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Spurless and Wideband Continuous-Time Electro-Optical Phase Locked Loop (CT-EOPLL) for High Performance LiDAR
Frequency-modulated continuous-wave (FMCW) LiDAR systems are drawing increasing interest due to their potential applications in autonomous driving, machine perception, rapid prototyping, and medical diagnostics. The nonlinearity of a laser’s input-output transfer function can degrade the performance of an FMCW LiDAR. However, traditional discrete-time electro-optical phase-locked loops (DT-EOPLLs) face an unfavorable trade-off between chirp bandwidth and Mach-Zehnder delay. We present an integrated continuous-time electro-optic phase-locked loop (CT-EOPLL) to address this problem. The proposed EOPLL is very wideband, with its loop bandwidth equal to its reference frequency. This feature enables it to relax the trade-off between chirp bandwidth and Mach-Zehnder (MZ) delay by $10\times $ in dB scale, which consequently reduces the area and loss associated with the silicon photonic delay implementation. It also does not suffer from the challenging issue of spurs in wideband PLLs because it features image and harmonic spur suppression in the loop using single-sideband (SSB) and harmonic-reject (HR) mixing techniques. The electrical part of this EOPLL is implemented in 65nm CMOS technology, and its optical integrated circuit is fabricated using a silicon photonic process. Featuring more than 25dB of suppression of the highest spur, this EOPLL is utilized in a high precision LiDAR sensor that shows an RMS depth precision of $558~\mu \text{m}$ at 2m distance, and a 9.4mm RMS depth resolution at ranges exceeding 3.3m.
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