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Stabilizing optical feedback-induced chaos by sinusoidal modulation beyond the relaxation frequency in semiconductor lasers

机译:通过正弦调制来稳定光反馈引起的混沌,使其超出半导体激光器的弛豫频率

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We report on stabilizing the chaotic dynamics of semiconductor lasers under optical feedback (OFB) by means of sinusoidal modulation at frequencies far beyond the relaxation frequency of the laser. The laser is assumed to be coupled to a short external cavity, which is characterized by a resonance frequency spacing higher than the relaxation frequency. The study is based on a time delay rate equation model of OFB, which is suitable for treating the regime of strong OFB and considering multiple reflections in the external cavity. We show that the intensity modulation response of the chaotic laser under strong OFB is enhanced over a narrow frequency band near the doubled relaxation frequency due to a photon-photon resonance. Within this high-frequency band, the sinusoidal modulation may convert the chaotic attractor to a limit cycle, and the small-signal modulation suppresses the relative intensity noise (RIN) to a level only 2 dB higher than the RIN level of the solitary laser.
机译:我们报告通过正弦调制在远超过激光器弛豫频率的频率下稳定半导体激光器在光反馈(OFB)下的混沌动力学。假定激光器耦合到短的外腔,其特征在于谐振频率间隔高于弛豫频率。该研究基于OFB的时延速率方程模型,该模型适用于处理强OFB的状态并考虑外腔中的多次反射。我们表明,由于光子-光子共振,在强OFB下的混沌激光器的强度调制响应在双倍弛豫频率附近的狭窄频带上得到了增强。在此高频段内,正弦调制可将混沌吸引子转换为极限周期,而小信号调制可将相对强度噪声(RIN)抑制到仅比单独激光器的RIN水平高2 dB的水平。

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