留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

单壁碳纳米管锁模的高稳定性全保偏少周期飞秒光纤激光器

王开 王一凡 张禄年 闫宇航 戴礼龙 黄千千 牟成博

王开, 王一凡, 张禄年, 闫宇航, 戴礼龙, 黄千千, 牟成博. 单壁碳纳米管锁模的高稳定性全保偏少周期飞秒光纤激光器[J]. 中国光学(中英文). doi: 10.37188/CO.2026-0089
引用本文: 王开, 王一凡, 张禄年, 闫宇航, 戴礼龙, 黄千千, 牟成博. 单壁碳纳米管锁模的高稳定性全保偏少周期飞秒光纤激光器[J]. 中国光学(中英文). doi: 10.37188/CO.2026-0089
WANG Kai, WANG Yi-fan, ZHANG Lu-nian, YAN Yu-hang, DAI Li-long, HUANG Qian-qian, MOU Cheng-bo. Highly stable all-polarization-maintaining few-cycle femtosecond fiber laser mode-locked by single-walled carbon nanotubes[J]. Chinese Optics. doi: 10.37188/CO.2026-0089
Citation: WANG Kai, WANG Yi-fan, ZHANG Lu-nian, YAN Yu-hang, DAI Li-long, HUANG Qian-qian, MOU Cheng-bo. Highly stable all-polarization-maintaining few-cycle femtosecond fiber laser mode-locked by single-walled carbon nanotubes[J]. Chinese Optics. doi: 10.37188/CO.2026-0089

单壁碳纳米管锁模的高稳定性全保偏少周期飞秒光纤激光器

cstr: 32171.14.CO.2026-0089
基金项目: 国家自然科学基金(No. 62505168,No. 61975107);上海市自然科学基金(No. 24ZR1422000);国家资助博士后研究人员计划(No. GZC20250549);天津大学精密测量技术与仪器国家重点实验室开放基金(No. Pila2505);国家重点研发计划(No. 2020YFB1805800);“111”项目(No. D20031)
详细信息
    作者简介:

    牟成博,男(1982—),黑龙江大庆人,博士,天津大学精密仪器与光电子工程学院获得工学学士学位,英国圣安德鲁斯大学物理与天文学院获得理学硕士学位,英国阿斯顿大学光子技术研究所获得光子学博士学位,2016年至今,在上海大学通信与信息工程学院担任教授、博士生导师。主要从事全光纤超快激光器的实现及脉冲动力学研究,光纤器件和激光偏振特性研究、新型光纤器件的传感及光纤激光应用、纳米光子学等。通信地址:上海市南陈路333号上海大学通信学院(200444), E-mail:mouc1@shu.edu.cn

  • 中图分类号: TP394.1;TH691.9

Highly stable all-polarization-maintaining few-cycle femtosecond fiber laser mode-locked by single-walled carbon nanotubes

Funds: This work is supported by Innovation Program for National Natural Science Foundation of China (No. 62505168, No. 61975107); Natural Science Foundation of Shanghai Municipality (No. 24ZR1422000); Postdoctoral Fellowship Program of CPSF (No. GZC20250549); Open Fund Project of State Key Laboratory Precision Measurement Technology and Instruments in Tianjin University (No. Pila2505); National Key Research and Development Program of China (No. 2020YFB1805800) and the “111” project (No. D20031)
More Information
  • 摘要:

    为了满足面向阿秒科学、精密加工及超快光谱学等领域对高性能超短脉冲的需求,本研究了一种高稳定性、自启动的全保偏少周期飞秒光纤激光器。以单壁碳纳米管薄膜作为可饱和吸收体构建了重复频率为100.45 MHz的全保偏掺铒光纤种子源;通过全保偏双向放大结构结合非线性光谱展宽与色散管理技术,进一步经保偏高非线性光纤非线性展宽和色散补偿后,基于自相关测量获得30.1 fs的主脉冲宽度,获得了仅含约5.8个光学周期的少周期脉冲序列,其放大输出平均功率超过200 mW。稳定性测试表明种子源连续运行10小时的功率均方根波动仅为0.4%,在引入温控与压电陶瓷进行重频锁定后,百秒艾伦方差达9.98 × 10−14,该种子源凭借其紧凑的结构和优异的运行稳定性,为后续产生跨倍频程超连续谱及实现高性能频率梳应用奠定了坚实的实验基础。

     

  • 图 1  SWCNTs聚合物薄膜的典型光学特性表征。 (a) SWCNTs聚合物薄膜纯视觉图像; (b) 显微镜下SWCNTs聚合物薄膜图像; (c) SWCNTs聚合物薄膜非线性光学吸收特性; (d) SWCNTs聚合物薄膜的线性光学吸收谱; (e) SWCNTs聚合物薄膜拉曼光谱

    Figure 1.  Typical optical property characterization of SWCNTs polymer films. (a) Image of SWCNTs film from camera; (b) Image of SWCNTs film under microscope; (c) Nonlinear optical absorption characteristics of SWCNTs film; (d) Linear optical absorption spectrum of SWCNTs film; (e) Raman spectrum of SWCNTs film.

    图 2  全保偏SWCNTs光纤飞秒激光器原理示意图及测量结果。 (a) 种子源及放大器结构原理图; (b) 输出光谱图,蓝色:种子输出光谱,红色:放大器输出光谱; (c) 时域脉冲序列输出图,蓝色:种子脉冲序列,红色:放大器脉冲序列,插图:50 μs范围的脉冲序列图;(d) 0.8 MHz 带宽、100 Hz分辨率的基频射频谱图,蓝色:种子射频,红色:放大器射频,插图:扫描范围为5.0 GHz、10 kHz分辨率带宽的射频谱

    Figure 2.  Schematic diagram of the principle and measurement results of the all-PM fiber femtosecond laser. (a) Schematic diagram of the seed source and amplifier structure; (b) Output spectrum diagram, blue: seed output spectrum, red: amplifier output spectrum; (c) Time-domain pulse sequence output diagram, blue: seed pulse sequence, red: amplifier pulse sequence, inset: pulse sequence diagram within a 50 μs range; (d) Fundamental radio frequency spectrum diagram with a bandwidth of 0.8 MHz and a resolution of 100 Hz, blue: seed radio frequency, red: amplifier radio frequency, inset: radio frequency spectrum with a scanning range of 5.0 GHz and a resolution bandwidth of 10 kHz.

    图 3  脉冲序列自相关结果。(a) 种子脉冲序列自相关结果; (b) 放大输出脉冲序列自相关结果

    Figure 3.  Autocorrelation results of pulse sequences. (a) Autocorrelation results of seed pulse sequence; (b) Autocorrelation results of amplified output pulse sequence.

    图 4  超连续谱的产生示意图及输出结果。 (a)超连续产生结构示意图; (b) 超连续脉冲序列自相关结果; (c) 超连续光谱输出结果(分别采用OSA AQ 6370D (600-1700 nm)以及OSA AQ 6375 (1200-2400 nm)进行光谱采集)

    Figure 4.  Schematic diagram of supercontinuum generation and output results. (a) Schematic diagram of supercontinuum generation structure using HNLF; (b) Autocorrelation results of supercontinuum pulse sequence; (c) Output results of supercontinuum spectrum (Spectra were collected using the OSA AQ 6370D (600-1700 nm) and OSA AQ 6375 (1200-2400 nm)).

    图 5  锁模光纤激光器的输出稳定性测试。(a) 10小时内的输出功率演变,插图:300-400分钟内功率演化图局部放大;(b) 10小时内的光谱演变结果

    Figure 5.  Output stability test of a mode-locked fiber laser. (a) Evolution of output power over 10 hours. Inset: magnification of power evolution diagram within 300-400 minutes; (b) Evolution of spectrum over 10 hours.

    图 6  锁模光纤激光器锁频后稳定性测试。(a) 60分钟内的激光器频率演变,上图:未锁定,下图:锁定;(b) 锁频后的$ {f}_{rep} $艾伦方差结果

    Figure 6.  Stability test of mode-locked fiber laser after repetition rate locking. (a) Laser repetition rate evolution within 60 minutes, Top image: unlocked, bottom image: locked; (b) Allan deviation result of the$ {f}_{rep} $.

    表  1  相似工作的参数整理与对比

    Table  1.   comparison of similar working parameters

    参考文献 工作波段 脉冲宽度 平均功率 重复频率 $ {f}_{rep} $/$ {f}_{ceo} $是否锁定
    [20] 1550 nm 29 fs 52 mW 4 MHz 否/否
    [21] 1550 nm 22.7 fs 120 mW 43 MHz 否/否
    [22] 1550 nm 34 fs 320 mW 200 MHz 否/否
    [23] 1550 nm 50 fs 13.6 mW 85 MHz 否/否
    [24] 1566 nm 77 fs 37 mW 199.6 MHz 否/否
    [25] 1565 nm 72 fs 3 mW 250 MHz 否/否
    [26] 1550 nm 100 fs 50 mW 83 MHz 是/是
    [27] 1550 nm 44.5 fs 440 mW 206 MHz 是/是
    本文 1560 nm 30.1 fs 65.1 mW 100.45 MHz 是/否
    下载: 导出CSV
  • [1] TIAN K, HE L ZH, YANG X M, et al. Mid-infrared few-cycle pulse generation and amplification[J]. Photonics, 2021, 8(8): 290. doi: 10.3390/photonics8080290
    [2] CARLSON D R, HICKSTEIN D D, ZHANG W, et al. Ultrafast electro-optic light with subcycle control[J]. Science, 2018, 361(6409): 1358-1363. doi: 10.1126/science.aat6451
    [3] VIOTTI A L, LI CH, ARISHOLM G, et al. Few-cycle pulse generation by double-stage hybrid multi-pass multi-plate nonlinear pulse compression[J]. Optics Letters, 2023, 48(4): 984-987. doi: 10.1364/OL.478790
    [4] WANG SH T, YANG J J, DENG G L, et al. Femtosecond laser direct writing of flexible electronic devices: a mini review[J]. Materials, 2024, 17(3): 557. doi: 10.3390/ma17030557
    [5] HÄDRICH S, KIENEL M, MÜLLER M, et al. Energetic sub-2-cycle laser with 216 W average power[J]. Optics Letters, 2016, 41(18): 4332-4335. doi: 10.1364/OL.41.004332
    [6] LI C L, FISHER C J, BURKE R, et al. Orthopedics-related applications of ultrafast laser and its recent advances[J]. Applied Sciences, 2022, 12(8): 3957. doi: 10.3390/app12083957
    [7] ROTHHARDT J, HÄDRICH S, DELAGNES J C, et al. High average power near-infrared few-cycle lasers (Laser Photonics Rev. 11(4)/2017)[J]. Laser & Photonics Reviews, 2017, 11(4): 1770041. doi: 10.1002/lpor.201770041
    [8] FU W, WRIGHT L G, SIDORENKO P, et al. Several new directions for ultrafast fiber lasers [invited][J]. Optics Express, 2018, 26(8): 9432-9463. doi: 10.1364/OE.26.009432
    [9] NIU S B, WANG W W, LIU P, et al. Recent advances in applications of ultrafast lasers[J]. Photonics, 2024, 11(9): 857. doi: 10.3390/photonics11090857
    [10] PI Z, KIM H Y, GOULIELMAKIS E. Petahertz-scale spectral broadening and few-cycle compression of Yb: KGW laser pulses in a pressurized, gas-filled hollow-core fiber[J]. Optics Letters, 2022, 47(22): 5865-5868. doi: 10.1364/OL.474872
    [11] QIAN J Y, WANG P F, PENG Y J, et al. Pulse combination and compression in hollow-core fiber for few-cycle intense mid-infrared laser generation[J]. Photonics Research, 2021, 9(4): 477-483. doi: 10.1364/PRJ.415794
    [12] YUAN ZH, YANG K J, LI Y, et al. Generation of high-repetition-rate, high-power, few-cycle, 2-µm laser pulses with a single-stage all-fiber nonlinear compressor[J]. Optics Letters, 2025, 50(12): 3852-3855. doi: 10.1364/OL.562939
    [13] WU Y, CAI Y, ZHOU G Q, et al. Generation of sub-three-cycle pulses via double-stage all-fiber nonlinear compression from a thulium-doped fiber laser[J]. Advanced Photonics Nexus, 2025, 4(5): 056009. doi: 10.1117/1.apn.4.5.056009
    [14] CHEN Y C, RARAVIKAR N R, SCHADLER L S, et al. Ultrafast optical switching properties of single-wall carbon nanotube polymer composites at 1.55 μm[J]. Applied Physics Letters, 2002, 81(6): 975-977. doi: 10.1063/1.1498007
    [15] OSTOJIC G N, ZARIC S, KONO J, et al. Interband recombination dynamics in resonantly excited single-walled carbon nanotubes[J]. Physical Review Letters, 2004, 92(11): 117402. doi: 10.1103/PhysRevLett.92.117402
    [16] WEISMAN R B, BACHILO S M. Dependence of optical transition energies on structure for single-walled carbon nanotubes in aqueous suspension: an empirical Kataura plot[J]. Nano Letters, 2003, 3(9): 1235-1238. doi: 10.1021/nl034428i
    [17] MÜLLER M, BULDT J, STARK H, et al. Multipass cell for high-power few-cycle compression[J]. Optics Letters, 2021, 46(11): 2678-2681. doi: 10.1364/OL.425872
    [18] TAOUTIOUI A, AGUENY H. Femtosecond single cycle pulses enhanced the efficiency of high order harmonic generation[J]. Micromachines, 2021, 12(6): 610. doi: 10.3390/mi12060610
    [19] PENG P, MARCEAU C, VILLENEUVE D M. Attosecond imaging of molecules using high harmonic spectroscopy[J]. Nature Reviews Physics, 2019, 1(2): 144-155. doi: 10.1038/s42254-018-0015-1
    [20] PURDIE D G, POPA D, WITTWER V J, et al. Few-cycle pulses from a graphene mode-locked all-fiber laser[J]. Applied Physics Letters, 2015, 106(25): 253101. doi: 10.1063/1.4922397
    [21] LUO H, ZHAN L, ZHANG L, et al. Generation of 22.7-fs 2.8-nJ pulses from an erbium-doped all-fiber laser via single-stage soliton compression[J]. Journal of Lightwave Technology, 2017, 35(17): 3780-3784. doi: 10.1109/JLT.2017.2723088
    [22] YU J, FENG Y, CAI Y J, et al. 34-fs, all-fiber all-polarization-maintaining single-mode pulse nonlinear amplifier[J]. Optics Express, 2016, 24(15): 16630-16637. doi: 10.1364/OE.24.016630
    [23] ZHOU J Q, PAN W W, FU X H, et al. Environmentally-stable 50-fs pulse generation directly from an Er: fiber oscillator[J]. Optical Fiber Technology, 2019, 52: 101963. doi: 10.1016/j.yofte.2019.101963
    [24] HAN Y, TIAN H CH, MENG F, et al. Environment-stable sub-100 fs Er: fiber laser with a 3 dB bandwidth of 78 nm[J]. Optics Express, 2022, 30(26): 48021-48029. doi: 10.1364/OE.476426
    [25] HÄNSEL W, HOOGLAND H, GIUNTA M, et al. All polarization-maintaining fiber laser architecture for robust femtosecond pulse generation[J]. Applied Physics B, 2017, 123(1): 41. doi: 10.1007/s00340-016-6598-2
    [26] KUSE N, JIANG J, LEE C C, et al. All polarization-maintaining Er fiber-based optical frequency combs with nonlinear amplifying loop mirror[J]. Optics Express, 2016, 24(3): 3095-3102. doi: 10.1364/OE.24.003095
    [27] KITAJIMA S, JUNG K, NISHIZAWA N. 206 MHz fully stabilized all-PM dispersion-managed figure-9 fiber laser comb[J]. Scientific Reports, 2024, 14(1): 7108. doi: 10.1038/s41598-024-57735-2
    [28] ZHI J W, GUO X Y, YANG X SH, et al. Multi-soliton microcombs enable ultrafast nanometric-precision ranging and photon-level detection[J]. Advanced Science, 2026, 13(12): e16806. doi: 10.1002/advs.202516806
    [29] ZENG H Q, HU Q Y, ZHANG Y B, et al. Integrated electro-optic frequency combs: physical mechanisms, device architectures, material platforms and system applications[J]. Nanomaterials, 2026, 16(9): 559. doi: 10.3390/nano16090559
  • 加载中
图(6) / 表(1)
计量
  • 文章访问数:  5
  • HTML全文浏览量:  2
  • PDF下载量:  0
  • 被引次数: 0
出版历程
  • 网络出版日期:  2026-08-03

目录

    /

    返回文章
    返回