论文标题

通过自我注射锁定向耳语 - 助手模式微孔子的自我注射稳定的优化:实验研究

Optimization of laser stabilization via self-injection locking to a whispering-gallery-mode microresonator: experimental study

论文作者

Shitikov, Artem E., Lykov, Ilya I., Benderov, Oleg V., Chermoshentsev, Dmitry A., Gorelov, Ilya K., Danilin, Andrey N., Galiev, Ramzil R., Kondratiev, Nikita M., Cordette, Steevy J., Rodin, Alexander V., Masalov, Anatoly V., Lobanov, Valery E., Bilenko, Igor A.

论文摘要

将二极管激光器的自注射锁定到高质量的小因子微孔子器中被广泛用于频率稳定和线宽变窄。我们用测量的瞬时线宽为1 Hz构建了几个基于微孔子的激光源,并将它们用于调查和实施自我注射锁定效果。我们通过分析和实验研究了稳定系数对可调参数(例如锁定阶段和耦合速率)的依赖性。结果表明,锁定阶段的精确控制允许从稳定激光二极管对生成的频率进行微调。我们还表明,此类激光源可以通过在自我注射锁定方程内进行电流调整来实现快速连续和线性频率调制。我们从概念上证明,使用这种微孔子稳定的激光二极管在频率较高的态度中,在10 km的距离内进行了连贯的频率调节连续波光痛,并在未调制的情况下测量速度低至每秒的速度低至亚微米。这些结果可能引起人们对尖端技术应用的关注,例如空间碎片监测和远程对象分类,高分辨率光谱法等。

Self-injection locking of a diode laser to a high-quality-factor microresonator is widely used for frequency stabilization and linewidth narrowing. We constructed several microresonator-based laser sources with measured instantaneous linewidths of 1 Hz and used them for investigation and implementation of the self-injection locking effect. We studied analytically and experimentally the dependence of the stabilization coefficient on tunable parameters such as locking phase and coupling rate. It was shown that precise control of the locking phase allows fine tuning of the generated frequency from the stabilized laser diode. We also showed that it is possible for such laser sources to realize fast continuous and linear frequency modulation by injection current tuning inside the self-injection locking regime. We conceptually demonstrate coherent frequency-modulated continuous wave LIDAR over a distance of 10 km using such a microresonator-stabilized laser diode in the frequency-chirping regime and measure velocities as low as sub-micrometer per second in the unmodulated case. These results could be of interest for cutting-edge technology applications such as space debris monitoring and long-range object classification, high resolution spectroscopy and others.

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