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傅里叶域锁模扫频光纤激光器研究方法:以掺铒光纤激光器为例 被引量:3

Frequency-Swept Fiber Laser Based on Fourier-Domain Mode-Locking: A Case Study on Erbium-Doped Fiber Laser
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摘要 傅里叶域锁模是一种可以同时获得快速频率或波长扫描和高质量激光输出的方法。以掺铒光纤激光器为例,首次系统性地论证了傅里叶域锁模扫频激光器的研究方法,主要内容包括激光谐振腔长与扫描滤波器速率匹配、腔内色散管理、扫描滤波器性能表征、激光增益介质特性分析、激光器系统设计等理论、原理及方法研究过程,以及激光极限锁模范围、单向扫描性能、不同延迟光纤和滤波器驱动频偏对激光输出功率影响、不同扫描方向激光瞬时线宽受滤波器驱动频偏影响等实验研究与讨论过程。同时,首次演示了以掺铒光纤为激光增益介质且波长扫描范围为3.072 nm、光信噪比为57.31 dB、扫描速率为62.918 kHz、瞬时线宽为4.28 GHz的高质量傅里叶域锁模扫频光纤激光输出,并讨论了其性能进一步提升方法。本文对于初步接触傅里叶域锁模扫频激光技术的研究人员具有重要的指导意义。 Objective Fourier-domain mode locking(FDML)is a new type of optical spectrum modulation technique that outputs a narrow linewidth continuous frequency-swept(or wavelength-swept)laser,which differs from the traditional intensity modulation mode-locking technique.By appropriately controlling the relationship between the scanning speed of the tunable optical filter and the length of the laser cavity,an FDML frequency-swept laser can achieve stable simultaneous oscillation of all longitudinal modes inside the cavity within the filter scanning range,consequently achieving an ultrahigh-speed frequency sweep.Most reported FDML frequency-swept fiber lasers(FSFLs)are fabricated using semiconductor optical amplifiers,which can provide a broad wavelength-swept range but exhibit a relatively wide instantaneous linewidth.The long energy-level lifetime and homogeneous broadening gain effect of rare-earth ions doped silica glass achieve strong wavelength-dependent characteristic,which are expected to realize the narrow instantaneous linewidth of an FDML FSFL.However,FDML FSFLs based on the rare-earth-doped fibers have rarely been reported.Additionally,although many reports can be found in the literatures,no study comprehensively evaluates the theory and mechanism analysis,design,construction,and performance characterization of FDML FSFLs.Therefore,proposing a set of comprehensive study methods on FDML FSFLs is crucial.Considering FDML FSFLs based on erbium-doped fibers(EDF)as an example,we systematically demonstrated the theoretical and experimental research processes on FDML FSFLs and achieved a high-quality frequency-swept laser output using the EDF laser(EDFL).To the best of our knowledge,this is the first such study to date.Methods The basic theoretical operating principle of the FDML technique and the influence of laser cavity length matching and dispersion management on the performance of FDML FSFLs were analyzed.The operating characteristics of several common optical filters were introduced,and the high-frequency operating capability of the fiber Fabry-Pérot tunable filter(FFP-TF)was studied(Fig.2).Moreover,the advantages of EDFs as the gain medium of FDML FSFLs are examined.An FDML frequency-swept EDFL based on a ring cavity configuration was designed and fabricated(Fig.3)with an FFP-TF as the FDML scanning optical filter,and the electro-optic modulator-based time-gating technique was used to characterize the frequency-swept laser output.Results and Discussions The characteristics of the proposed FDML FSFL were experimentally studied in detail,including the mode-locking wavelength range,single-direction frequency sweeping,dispersion,filter driving frequency deviation,and laser instantaneous linewidth.We found that the gain level of EDF directly affects the wavelength sweeping range(Fig.4).Further,the overall spectral power distributions for forward and backward frequency sweeps differ owing to the nonlinearity of the delay fiber(Fig.5).A greater pure dispersion in the laser cavity induces a higher sensitivity of the output power to the FFP-TF's driving frequency deviation(Fig.6).Moreover,a larger FFP-TF's driving frequency deviation induces a higher broadening effect of the swept laser's instantaneous linewidth(Fig.8).Therefore,to obtain the best operating condition of the proposed FDML FSFL,an EDF with high luminous efficiency should be selected as the gain medium,either a delay fiber with low nonlinearity and zero dispersion should be selected or a laser cavity with zero dispersion should be designed,and the driving frequency of the FFP-TF should be fixed exactly at the base oscillating frequency of the fiber laser.Conclusions Considering the EDFL as an example,the theoretical and experimental research on FDML FSFLs is systematically demonstrated for the first time.On the one hand,the theory,principle,and method for matching the length of the laser cavity and the scanning rate of the tunable filter,intracavity dispersion management,performance characterization of tunable filter,analysis of laser gain medium,and system design of the FDML FSFL are studied in detail.On the other hand,the maximum wavelength sweeping range of the FDML mechanism using EDF as the gain,the performance of single-direction frequency sweeping,the influence of different delay fibers and FFP-TF's driving frequency deviation on the laser output power,and the effect of the driving frequency deviation on the laser's instantaneous linewidth for different sweeping directions of the FDML swept laser are experimentally studied and discussed.Consequently,for the first time,an FDML frequency-swept EDFL is realized with the scanning range,optical signal-to-noise ratio,scanning rate,and instantaneous linewidth of 3.072 nm,57.31 dB,62.918 kHz,and 4.28 GHz,respectively.In the future,we will focus on the development of large-mode-area high-gain fibers and ultranarrow-band high-speed scanning filters,as well as on the study of more efficient scanning mechanisms.Our work emphasizes the research method and combines the theoretical and experimental findings.This work is expected to provide guidance,particularly to researchers initially studying FDML frequency/wavelength-swept lasers.
作者 韦达 冯亭 延凤平 马泽原 姚晓天 Wei Da;Feng Ting;Yan Fengping;Ma Zeyuan;Yao Xiaotian(Photonics Information Innovation Center,College of Physics and Technology,Hebei University,Baoding,Hebei 071002,China;Hebei Provincial Center for Optical Sensing Innovations,Baoding,Hebei 071002,China;Institute of Lightwave Technology,Beijing Jiaotong University,Beijing 100044,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2021年第16期22-34,共13页 Chinese Journal of Lasers
基金 国家自然科学基金(61975049,61705057,61620106014) 河北省自然科学基金优秀青年基金(F2020201001) 大学生创新创业训练计划项目-河北大学(2020211)。
关键词 激光器 傅里叶域锁模 扫频激光器 掺铒光纤 扫描滤波器 lasers Fourier-domain mode-locking frequency-swept laser erbium-doped fiber scan filter
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  • 1G Ripandelli, A M Copp6, A Capaldo, et al: Optical coherence tomography[J]. Seminars in Ophthalmology, 1998, 13 (4): 199-202.
  • 2M Wojtkowski, T Bajraszewski, P Targowski, el al: Real-time in vivo imaging by high-speed spectral optical coherence tomography[J]. Opt Lett, 2003, 28(19): 1745-1747.
  • 3M R Hee, J A Izatt, E A Swanson, et al: Optical coherence tomography of the human retina[J]. Archives of Ophthalmology, 1995, 113(3): 325-332.
  • 4J Welzel. Optical coherence tomography in dermatology: a review [J]. Skin Research and Technology, 2001, 7(1): 1-9.
  • 5J Sanz, Z A Fayad. Imaging of atheroselerotic cardiovascular disease[J]. Nature, 2008, 451(1181): 953-957.
  • 6D Huang, E A Swanson, C P Lin, et al: Optical coherence tomography[J]. Science, 1991, 254(5035): 1178 -1181.
  • 7J F D Boer, B Cense, B H Park, et al: Improved signal-to-noise ratio in spectral-domain comparedwith time-domain optical coherence tomography [ J]. Opt Lett, 2003, 28 ( 21 ) 2067-2069.
  • 8R Huber, M Wojtkowski, K Taira, et al: Amplified, frequency swept lasers for frequency domain reflectometry and OCTimaging: design and scaling principles[J]. Opt Express, 2005, 13 (9) : 3513-3528.
  • 9R Huber, M Wojtkowski, J G Fujimoto. Fourier domain mode locking (FDML): A newlaser operating regime and applications foroptical coherence tomography[J]. Opt Express, 2006, 14 (8) : 3225-3237.
  • 10R Huber, D C Adler, J G Fujimoto. Buffered Fourierdomain mode locking: Unidirectional swept laser sources foroptical coherence tomography imaging at 370,000 lines/s[J]. Opt Lett, 2006, 31(20) : 2975-2977.

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