Editorial: Semiconductor laser dynamics and its applications

Anbang Wang, Cheng Wang
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Abstract

This Research Topic focuses on the dynamics and nonlinear dynamics of semiconductor lasers as well as the applications. Over the past 30 years, semiconductor laser dynamics have undergone significant development. Rich dynamical phenomena, such as periodic oscillation, low-frequency fluctuation, spiking, chaos, and synchronization have each been detected. Notably, semiconductor laser dynamics have been incorporated into a significant number of applications, such as secure communication, optical measurement, microwave generation, and photonic information processing. In line with the ongoing development of semiconductor lasers and their updated application requirements, research focused on laser dynamics and its applications will continue to expand, introducing novel devices and methods. This Research Topic comprise three articles, which provide insight into the state of the art of semiconductor laser dynamics. Xiao et al. report a chaotic microlaser without any external perturbations. The physical mechanism of the chaos generation originates from the internal mode interaction of nearly degenerate modes. Based on this self-chaotic laser source, physical random number generation as fast as 10 Gb/s is successfully demonstrated. On the other hand, Chomet et al. present a spontaneous mode locking laser without any saturable absorbers. Continuous wave generation of picosecond pulses at a rate of 100 GHz is demonstrated, and the timing jitter of the pulse trains is as low as 110 fs. Through a theoretical model analysis, the physical mechanism is attributed to the interplay between self-phase modulation and anomalous dispersion together with light-matter interaction-induced time symmetry breaking. In addition, Roos et al. discuss the spontaneous emission noise resilience of the phase locked operation of delay-coupled nanolasers. The numerical result reveals that a polarization dephasing time of two to three times the cavity photon lifetime maximizes the system’s ability to remain phase-locked in the presence of noise-induced perturbations. The strong parameter dependence of the noise tolerance is helpful for the design of robust on-chip integrated networks of nanolasers. OPEN ACCESS
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社论:半导体激光动力学及其应用
本课题主要研究半导体激光器的动力学、非线性动力学及其应用。在过去的30年里,半导体激光动力学发生了重大的发展。检测到了丰富的动力学现象,如周期振荡、低频波动、尖峰、混沌和同步。值得注意的是,半导体激光动力学已被纳入大量应用中,如安全通信、光学测量、微波产生和光子信息处理。随着半导体激光器的不断发展及其最新的应用要求,专注于激光动力学及其应用的研究将继续扩大,引入新的器件和方法。本研究主题包括三篇文章,深入了解半导体激光动力学的现状。肖等人报道了一种没有任何外部扰动的混沌微激光器。混沌产生的物理机制源于近简并模的内部模相互作用。基于该自混沌激光源,成功地实现了10Gb/s的物理随机数生成。另一方面,Chomet等人提出了一种没有任何饱和吸收体的自发锁模激光器。证明了以100GHz的速率连续产生皮秒脉冲,并且脉冲串的定时抖动低至110fs。通过理论模型分析,物理机制归因于自相位调制和反常色散之间的相互作用,以及光-物质相互作用引起的时间对称性破坏。此外,Roos等人讨论了延迟耦合纳米激光器锁相操作的自发发射噪声弹性。数值结果表明,偏振去相位时间是腔光子寿命的两到三倍,最大限度地提高了系统在存在噪声引起的扰动时保持锁相的能力。噪声容限的强参数依赖性有助于设计鲁棒的芯片上集成纳米激光器网络。开放存取
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