Spontaneous mode locking of a multimode semiconductor laser under continuous wave operation

B. Chomet, S. Blin, G. Beaudoin, K. Pantzas, I. Sagnes, S. Denet, A. Garnache
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Abstract

Self-starting mode-locking is observed in a laser based on a compact III-V diode-pumped quantum-well surface-emitting semiconductor laser technology with a saturable-absorber-free but dispersive cavity. Continuous wave generation of picosecond pulses at a rate of 100 GHz is demonstrated by recording microwave intensity noises, beat frequency, time-resolved optical spectra, and intensity autocorrelation. Coherence of the pulse train is obtained through the frequency noise measurement of the demodulated beat note, demonstrating a timing jitter as low as 110 fs, near the quantum limit. Using a theoretical model based on a generalized Haus master equation, we demonstrate the existence of this mode locked state without the need for saturable absorption. The fundamental physical mechanism is the interplay between self-phase modulation and anomalous dispersion like in cavity soliton together with light–matter interaction-induced time symmetry breaking.
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连续波作用下多模半导体激光器的自发锁模
在基于紧凑的III-V族二极管泵浦量子阱表面发射半导体激光器技术的激光器中观察到自启动锁模,该激光器具有可饱和的无吸收体但色散的腔。通过记录微波强度噪声、拍频、时间分辨光谱和强度自相关,证明了100GHz速率下皮秒脉冲的连续波产生。脉冲串的相干性是通过对解调拍频音符的频率噪声测量获得的,证明了低至110fs的定时抖动,接近量子极限。使用基于广义豪斯主方程的理论模型,我们证明了这种锁模状态的存在,而不需要饱和吸收。基本的物理机制是自相位调制和类反常色散的腔内孤子之间的相互作用,以及光-物质相互作用引起的时间对称性破坏。
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