摘要
光纤布里渊激光是实现窄线宽激光器的重要技术方案,光纤谐振腔的品质因子(Q值)越高,产生的布里渊激光线宽越窄。通过增加光纤谐振腔长度同时减小其自由频谱宽度,将耦合Q值提升到10^(10)以上。利用超高精度的PoundDrever-Hall(PDH)锁定技术,在光纤谐振腔自由频谱宽度远低于布里渊增益带宽的情况下,实现单纵模布里渊激光的产生,其边模抑制比大于70 d B。此外,采用参考激光外差法、延时自外差法、共腔激光外差法三种方式对光纤布里渊激光器的线宽进行严格测试,实现亚毫赫兹(sub-m Hz)量级的布里渊激光基础线宽。
Objective Ultranarrow linewidth lasers have found widespread application in various fields such as precision gyroscopes,optical sensing,coherent optical communication,atomic clocks,and ultrastable microwave generators.Recently,researchers have used stimulated Brillouin scattering(SBS)in ultrahighqualityfactor(Qfactor)fiber resonators as an effective method for linewidth compression.By increasing the Qfactor and Stokes light power in a long fiber cavity,the linewidth of Brillouin lasers can be compressed,resulting in a narrower output beam.However,achieving stable singlelongitudinalmode operation with a long fiber cavity can be challenging due to limitations of the free spectral range(FSR),relative to the gain bandwidth of SBS.The Vernier effect in a compound cavity can address this challenge and achieve singlelongitudinalmode operation with narrow linewidth,though this approach requires precise control of cavity lengths and can be complex.In the present study,we described a novel approach that combines the PoundDreverHall(PDH)locking technique with the stimulated Brillouin effect in an ultrahighQfactor fiber resonator and achieved a significantly reduced linewidth for Brillouin lasers,reaching the submHz level.We hope that this research will promote the development of narrow linewidth Brillouin lasers and drive progress in several key fields,including optical communication,optical spectrum analysis,and optical sensing.Methods We combine the PoundDreverHall(PDH)locking technique with the stimulated Brillouin effect in an ultrahighQfactor fiber resonator to compress the linewidth of Brillouin lasers.Initially,we increase the coupled Qfactor to over 10^(10) by lengthening the fiber resonator and simultaneously reducing its free spectral range.In addition,thermal and mechanical isolation treatments are applied to the fiber resonator with foam and aluminum boxes to mitigate the influence of external environmental factors.The highprecision PDH locking technique is then used to generate a singlelongitudinalmode Brillouin laser with sidemode suppression exceeding 70 dB,even when the FSR of the fiber resonator is significantly smaller than the Brillouin gain bandwidth.Furthermore,we employ three methods to rigorously test the linewidth of the fiber Brillouin laser:the reference laser heterodyne method,the delayed selfheterodyne method,and the common cavity laser heterodyne method.These methods allow us to achieve a fundamental linewidth for the Brillouin laser at the submHz(millihertz)level.Results and Discussions As shown in Fig.5,the findings indicate that as the Brillouin laser power increases,there is a corresponding increase in sidemode power.Specifically,when the Stokes power is raised to 13 dBm,the Brillouin laser achieves a sidemode suppression ratio of 70 dB.However,further increasing the Brillouin laser power may potentially reduce noise performance.The analysis of the three linewidth measurement methods is shown in Fig.6.The common cavity laser heterodyne method effectively suppresses commonmode,mechanical,and vibration noise.At a Brillouin laser output power of 9 dBm,the fundamental linewidth is calculated from the frequency noise in the white noise region as 31μHz,which closely matches the theoretical expectation of 30μHz.Results from the delayed selfheterodyne method,shown in Fig.6(b),reveal a fundamental linewidth of 0.9 mHz at a Brillouin laser power of 13 dBm.However,experimental results are significantly influenced by variables such as the delay fiber length and external environmental conditions,which constrain measurement sensitivity and cause a notable deviation from theoretical values.In addition,comparing the phase noise of the Brillouin laser with that of the pump laser under PDHlocked conditions indicates that the Brillouin laser significantly mitigates the frequency noise of the pump light in this specified range.Conclusions In this study,we present a significant advancement in laser technology by successfully combining the PDH locking technique with SBS in an ultrahighQfactor fiber resonator.The result is a singlelongitudinalmode Brillouin laser with a narrow linewidth and substantial potential across various applications.Our meticulous approach involves three distinct measurement schemes—the reference laser heterodyne method,the delayed selfheterodyne method,and the common cavity laser heterodyne method—which allow for precise assessment of the SBS laser linewidth and comprehensive validation of our results.Using the common cavity laser heterodyne method,we achieve a remarkable fundamental linewidth of 31μHz,closely matching the theoretical calculation of 30μHz,affirming the robustness and accuracy of our methodology.This achievement marks a milestone in laser research,demonstrating our capability to attain submHz linewidth for Brillouin lasers.It also highlights the crucial role of Stokes light in mitigating phase noise from the pump laser,enhancing the overall stability and performance of the laser system.The implications of this research are profound,potentially advancing narrow linewidth Brillouin lasers and fostering progress in optical communication,optical spectrum analysis,and optical sensing.As we continue to refine and expand upon these findings,we anticipate further significant advancements in laser technology and its diverse applications.
作者
杨艳平
刘诗涵
周恒
Yang Yanping;Liu Shihan;Zhou Heng(Key Lab of Optical Fiber Sensing and Communication Networks,School of Information and Communication Engineering,University of Electronic Science and Technology of China,Chengdu 611731,Sichuan,China)
出处
《光学学报》
EI
CAS
CSCD
北大核心
2024年第20期151-156,共6页
Acta Optica Sinica
基金
国家自然科学基金(62375043,62001086)
四川省科技计划项目(2022YFSY0062)。
关键词
激光器
受激布里渊散射
窄线宽
单纵模
光纤谐振腔
laser
stimulated Brillouin scattering
narrow linewidth
singlelongitudinal mode
fiber resonator