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具有大延迟反馈的激光器基频之间的共振。

Resonances between fundamental frequencies for lasers with large delayed feedbacks.

作者信息

Kovalev Anton V, Islam Md Shariful, Locquet A, Citrin D S, Viktorov Evgeny A, Erneux Thomas

机构信息

ITMO University, Birzhevaya Liniya 14, 199034 Saint Petersburg, Russia.

Georgia Tech-CNRS UMI 2958, Georgia Tech Lorraine, 2 Rue Marconi, 57070 Metz, France.

出版信息

Phys Rev E. 2019 Jun;99(6-1):062219. doi: 10.1103/PhysRevE.99.062219.

DOI:10.1103/PhysRevE.99.062219
PMID:31330745
Abstract

High-order frequency locking phenomena were recently observed using semiconductor lasers subject to large delayed feedbacks. Specifically, the relaxation oscillation (RO) frequency and a harmonic of the feedback-loop round-trip frequency coincided with the ratios 1:5 to 1:11. By analyzing the rate equations for the dynamical degrees of freedom in a laser subject to a delayed optoelectronic feedback, we show that the onset of a two-frequency train of pulses occurs through two successive bifurcations. While the first bifurcation is a primary Hopf bifurcation to the ROs, a secondary Hopf bifurcation leads to a two-frequency regime where a low frequency, proportional to the inverse of the delay, is resonant with the RO frequency. We derive an amplitude equation, valid near the first Hopf bifurcation point, and numerically observe the frequency locking. We mathematically explain this phenomenon by formulating a closed system of ordinary differential equations from our amplitude equation. Our findings motivate experiments with particular attention to the first two bifurcations. We observe experimentally (1) the frequency locking phenomenon as we pass the secondary bifurcation point and (2) the nearly constant slow period as the two-frequency oscillations grow in amplitude. Our results analytically confirm previous observations of frequency locking phenomena for lasers subject to a delayed optical feedback.

摘要

最近,在受到大延迟反馈的半导体激光器中观察到了高阶频率锁定现象。具体而言,弛豫振荡(RO)频率与反馈回路往返频率的谐波以1:5至1:11的比例重合。通过分析受延迟光电反馈的激光器中动力学自由度的速率方程,我们表明双频脉冲序列的出现是通过两个连续的分岔产生的。第一个分岔是到RO的主霍普夫分岔,而第二个霍普夫分岔导致双频状态,其中与延迟的倒数成比例的低频与RO频率共振。我们推导了一个在第一个霍普夫分岔点附近有效的振幅方程,并通过数值方法观察到了频率锁定。我们通过从振幅方程建立一个常微分方程的封闭系统,从数学上解释了这一现象。我们的发现推动了实验,尤其关注前两个分岔。我们通过实验观察到:(1)当我们经过第二个分岔点时的频率锁定现象;(2)随着双频振荡幅度增大时几乎恒定的慢周期。我们的结果从分析上证实了先前关于受延迟光反馈的激光器频率锁定现象的观察。

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