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游标光学相控阵激光雷达收发器。

Vernier optical phased array lidar transceivers.

作者信息

Dostart Nathan, Zhang Bohan, Brand Michael, Al Qubaisi Kenaish, Onural Deniz, Feldkhun Daniel, Popović Miloš, Wagner Kelvin

出版信息

Opt Express. 2022 Jul 4;30(14):24589-24601. doi: 10.1364/OE.451578.

DOI:10.1364/OE.451578
PMID:36237010
Abstract

Optical phased arrays (OPAs) which beam-steer in two dimensions (2D) are currently limited to grating row spacings well above a half wavelength. This gives rise to grating lobes along one axis which limit the field of view (FOV), introduce return signal ambiguity, and reduce the optical efficiency in lidar applications. We demonstrate a Vernier transceiver scheme which uses paired transmit and receive phased arrays with different row periodicities, leading to mismatched grating lobe angular spacings and only a single aligned pair of transmit and receive lobes. This permits a return signal from a target in the desired lobe to be efficiently coupled back into the receive OPA while back-scatter from the other grating lobes is rejected, removing the ambiguity. Our proposal goes beyond previously considered Vernier schemes in other domains like RF and sound, to enable a dynamic Vernier where all beam directions are simultaneously Vernier aligned, and allow ultra-fast scanning, or multi-beam, operation with Vernier lobe suppression. We analyze two variants of grating lobe suppressing beam-steering configurations, one of which eliminates the FOV limitation, and find the conditions for optimal lobe suppression. We present the first, to the best of our knowledge, experimental demonstration of an OPA Vernier transceiver, including grating lobe suppression of 6.4 dB and beam steering across 5.5°. The demonstration is based on a pair of 2D-wavelength-steered serpentine OPAs. These results address the pervasive issue of grating lobes in integrated photonic lidar schemes, opening the way to larger FOVs and reduced complexity 2D beam-steering designs.

摘要

目前,二维光束转向的光学相控阵(OPA)限于远高于半波长的光栅行间距。这会在一个轴向上产生光栅旁瓣,从而限制视场(FOV)、引入回波信号模糊性,并降低激光雷达应用中的光学效率。我们展示了一种游标收发器方案,该方案使用具有不同行周期的成对发射和接收相控阵,导致光栅旁瓣角间距不匹配,且只有一对发射和接收旁瓣对齐。这使得来自所需旁瓣中目标的回波信号能够有效地耦合回接收OPA,同时抑制来自其他光栅旁瓣的后向散射,消除模糊性。我们的方案超越了射频和声等其他领域先前考虑的游标方案,实现了一种动态游标,其中所有光束方向同时处于游标对齐状态,并允许进行超快速扫描或多光束操作以及游标旁瓣抑制。我们分析了两种抑制光栅旁瓣的光束转向配置变体,其中一种消除了视场限制,并找到了最佳旁瓣抑制条件。据我们所知,我们首次展示了OPA游标收发器的实验,包括6.4 dB的光栅旁瓣抑制和5.5°的光束转向。该演示基于一对二维波长转向的蛇形OPA。这些结果解决了集成光子激光雷达方案中普遍存在的光栅旁瓣问题,为更大视场和更低复杂度的二维光束转向设计开辟了道路。

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Opt Express. 2022 Jul 4;30(14):24589-24601. doi: 10.1364/OE.451578.
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