Demonstration of Inherently Low Differential Phase Noise Across C-Band in InP Integrated, Amplifying Optical Phased Arrays

IF 2.2 3区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal of Quantum Electronics Pub Date : 2024-03-22 DOI:10.1109/JQE.2024.3404009
B. S. Vikram;Marco Gagino;A. Millan-Mejia;L. Augustin;K. A. Williams;V. Dolores Calzadilla
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Abstract

Optical phased arrays (OPAs) enable reliable and agile solid-state beam scanning for light detection and ranging (LiDAR), coherent beam combining, and free-space optical (FSO) communication systems. The performance of these systems strongly depends on the properties of the far-field pattern such as extinction ratio and side lobe suppression ratio, for maximizing the range and reliability of operation. Differential phase noise (DPN), a measure of the difference in time-varying phase fluctuations between the phased array channels, influences these characteristics, usually requiring the use of multiple phase-locked loops in fiber-based beam combining systems. In the present study, for the first time, we rigorously measure the differential phase noise between adjacent optical phased array channels integrated with phase modulators and in-line semiconductor optical amplifiers driven over a wide range of current densities in a generic InP photonic integrated platform. With the amplifiers driven at a current density of 5 kA/cm 2 , the OPA channels generated an RMS differential phase noise of less than 10 mrad across the C-band, proving the capabilities of the InP photonic platform in inherently maintaining a high degree of temporal coherence between adjacent channels. The influence of the measured differential phase noise on the far-field pattern and the pointing error are analytically evaluated. The integrated platform’s inherently low differential phase noise renders it suitable for implementing LiDAR and short-range FSO communication systems without active phase locking, significantly reducing system complexity.
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在 InP 集成放大光学相控阵中演示 C 波段固有的低差分相位噪声
光学相控阵(opa)为光探测和测距(LiDAR)、相干光束组合和自由空间光学(FSO)通信系统提供可靠和灵活的固态光束扫描。这些系统的性能很大程度上取决于远场方向图的特性,如消光比和旁瓣抑制比,以最大限度地提高工作范围和可靠性。差分相位噪声(DPN)是相控阵信道之间时变相位波动差异的度量,影响这些特性,通常需要在基于光纤的波束组合系统中使用多个锁相环。在本研究中,我们首次在一个通用的InP光子集成平台上,严格地测量了在宽电流密度范围内驱动的与相位调制器集成的相邻光学相控阵通道和直列半导体光放大器之间的差分相位噪声。当放大器以5 kA/cm2的电流密度驱动时,OPA通道在c波段产生的RMS差相位噪声小于10 mrad,证明了InP光子平台在相邻通道之间固有地保持高度时间相干性的能力。分析了测量的差相噪声对远场方向图和指向误差的影响。集成平台固有的低差分相位噪声使其适合实现激光雷达和短距离FSO通信系统,而无需主动锁相,从而显着降低系统复杂性。
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来源期刊
IEEE Journal of Quantum Electronics
IEEE Journal of Quantum Electronics 工程技术-工程:电子与电气
CiteScore
4.70
自引率
4.00%
发文量
99
审稿时长
3.0 months
期刊介绍: The IEEE Journal of Quantum Electronics is dedicated to the publication of manuscripts reporting novel experimental or theoretical results in the broad field of the science and technology of quantum electronics. The Journal comprises original contributions, both regular papers and letters, describing significant advances in the understanding of quantum electronics phenomena or the demonstration of new devices, systems, or applications. Manuscripts reporting new developments in systems and applications must emphasize quantum electronics principles or devices. The scope of JQE encompasses the generation, propagation, detection, and application of coherent electromagnetic radiation having wavelengths below one millimeter (i.e., in the submillimeter, infrared, visible, ultraviolet, etc., regions). Whether the focus of a manuscript is a quantum-electronic device or phenomenon, the critical factor in the editorial review of a manuscript is the potential impact of the results presented on continuing research in the field or on advancing the technological base of quantum electronics.
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