Applications of Quantum Dash Mode-Locked Laser in Microwave Photonics

Yuxuan Xie;Mostafa Khalil;Hao Sun;Jiaren Liu;Zhenguo Lu;Philip J. Poole;John Weber;Guocheng Liu;Mohamed Rahim;Lawrence R. Chen
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Abstract

Microwave photonics (MWP) represents a significant optical signal processing system, standing at the confluence of microwave engineering and photonics. It presents a promising way for meeting the growing demands of contemporary communication systems, radar, sensing, and signal processing. Driving the rapid advancement of MWP are pivotal technologies such as optical frequency combs, photonic integrated circuits, and advanced modulation formats. The integration of photonic integrated circuit technology with hybrid integration techniques holds the promise of realizing MWP systems on a single chip, while comb shaping technology endows MWP systems with programmable and reconfigurable capabilities. In this paper, we present a review of our recent research, which focused on exploring the full spectrum of potential applications for quantum dash lasers in MWP systems. Leveraging principles of finite impulse response filters, our MWP system not only facilitates conventional filtering but also enables instantaneous frequency measurement and waveform generation. A distinguishing feature of MWP filters is their uniform delay. After converting it into a uniform phase difference, it underpins the development of MWP-based phase antenna array systems. Furthermore, this uniform delay finds application in time-interleaved photonic analog-to-digital conversion.
量子Dash锁模激光器在微波光子学中的应用
微波光子学(MWP)是一种重要的光信号处理系统,处于微波工程与光子学的交汇点。它为满足当代通信系统、雷达、传感和信号处理日益增长的需求提供了一条有前途的途径。推动MWP快速发展的关键技术包括光频率梳、光子集成电路和先进的调制格式。光子集成电路技术与混合集成技术的集成使MWP系统有望在单芯片上实现,而梳状成形技术赋予MWP系统可编程和可重构能力。在本文中,我们介绍了我们最近的研究综述,重点是探索量子冲刺激光器在MWP系统中的全谱潜在应用。利用有限脉冲响应滤波器的原理,我们的MWP系统不仅简化了传统的滤波,而且还实现了瞬时频率测量和波形生成。MWP滤波器的一个显著特征是其均匀延迟。在将其转换成均匀相位差后,它支撑了基于mwp的相控阵系统的发展。此外,这种均匀延迟在时间交错光子模数转换中也有应用。
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