中国激光, 2013, 40 (7): 0702003, 网络出版: 2013-07-01   

被动锁模的传统孤子、耗散孤子掺铒光纤激光器 下载: 647次

Passively Mode-Locked Traditional Soliton, Dissipative Soliton Er-Doped Fiber Lasers
作者单位
1 北京工业大学激光工程研究院, 北京 100124
2 天津大学化工学院, 天津 300072
摘要
报道了基于氧化石墨烯被动锁模的超短脉冲掺铒光纤激光器。通过设计激光腔的结构,可使激光器分别运转在全负色散区以及正色散区。当激光器运行在全负色散区时,可得到重复频率为61 MHz的传统孤子脉冲输出,脉冲宽度为500 fs,光谱宽度为5.7 nm,最大输出功率为6 mW,单脉冲能量为0.1 nJ。当激光器运行在正色散区时,可得到重复频率为11.5 MHz的耗散孤子脉冲输出,脉冲宽度为143 ps,光谱宽度为2.4 nm,最大输出功率为21 mW,单脉冲能量为1.8 nJ。
Abstract
We demonstrate the ultrafast graphene oxide mode-locked Er-doped fiber lasers. The lasers can operate in all anomalous dispersion regime and normal dispersion regime respectively through the cavity design. When the laser operates in the all anomalous dispersion regime, the traditional soliton pulse trains at repetition rate of 61 MHz are generated. The measured pulse width is 500 fs, spectral width is 5.7 nm, and the maximum output power is 6 mW, corresponding to single pulse energy of 0.1 nJ. In the normal dispersion regime, dissipative soliton pulse trains at repetition rate of 11.5 MHz are generated. The pulse width is 143 ps, spectral width is 2.4 nm, and the maximum output power is 21 mW, corresponding to single pulse energy of 1.8 nJ.
参考文献

[1] U Keller, D A B Miller, G D Boyd, et al.. Solid-state low loss intracavity saturable for Nd:YLF lasers: an A-FPSA[J]. Opt Lett, 1992, 17(7): 505-507.

[2] S Y Set, H Yaguchi, Y Tanaka, et al.. Mode-locked fiber lasers based on a saturable absorber incorporating carbon nanotubes[C]. Optical Fiber Communications Conference, 2003. OFC, 2003. PD44.

[3] Q L Bao, H Zhang, Y Wang, et al.. Atomic layer graphene as saturable absorber for ultrafast pulsed laser[J]. Adv Funct Mater, 2009, 19(19): 3077-3083.

[4] Tawfigue Hasan, Zhipei Sun, Fengqiu Wang, et al.. Nanotube-polymer composites for ultrafast photonics[J]. Adv Mater, 2009, 21(38): 3874-3899.

[5] J Xu, S D Wu, J Liu, et al.. Nanosecond-pulsed erbium-doped fiber lasers with graphene saturable absorber[J]. Opt Commun, 2012, 285(21): 4466-4469.

[6] 刘江,吴思达,王科, 等. 基于石墨烯可饱和吸收体的被动锁模、被动调Q掺镱光纤激光器[J]. 中国激光, 2011, 38(8): 0802001.

    Liu Jiang,Wu Sida,Wang Ke, et al.. Passively mode-locked and Q-switched Yb-doped fiber lasers with graphene-based saturable absorber[J]. Chinese J Lasers, 2011, 38(8): 0802001.

[7] 刘江,魏汝省,徐佳, 等. 基于6H-SiC衬底外延石墨烯的被动锁模掺镱光纤激光器[J].中国激光, 2011, 38(8): 0802003.

    Liu Jiang, Wei Rusheng, Xu Jia, et al.. Passively mode-locked Yb-doped fiber laser with graphene epitaxially grown on 6H-SiC substrates[J]. Chinese J Lasers, 2011, 38(8): 0802003.

[8] 张成,罗正钱,王金章, 等. 熔锥光纤倏逝场作用石墨烯双波长锁模掺镱光纤激光器[J]. 中国激光, 2012, 39(6): 0602006.

    Zhang Cheng, Luo Zhengqian, Wang Jinzhang, et al.. Dual-wavelength mode-locked Yb-doped fiber laser based on the interaction of graphene and fiber-taper evanescent field[J]. Chinese J Lasers, 2012, 39(6) : 0602006.

[9] 汪光辉,王志腾,陈宇, 等. 基于石墨烯的被动锁模掺铒光纤孤子激光器[J]. 中国激光, 2012, 39(6): 0602003.

    Wang Guanghui,Wang Zhiteng,Chen Yu, et al.. Passively graphene mode-locked soliton erbium-doped fiber lasers[J]. Chinese J Lasers, 2012, 39(6): 0602003.

[10] 黄文育,冯德军,姜守振, 等. 基于单层石墨烯可饱和吸收的掺铒光纤激光器[J]. 中国激光, 2013, 40(2): 0202001.

    Huang Wenyu, Feng Dejun, Jiang Shouzhen, et al.. Erbium-doped fiber laser based on single-layer graphene saturable absorber[J]. Chinese J Lasers, 2013, 40(2): 0202001.

[11] 田振,刘山亮,张丙元, 等. 石墨烯锁模掺铒光纤脉冲激光器的实验研究[J]. 中国激光, 2011, 38(3): 0302004.

    Tian Zhen, Liu Shanliang, Zhang Bingyuan, et al.. Graphene mode-locked Er3+doped fiber pulse laser[J]. Chinese J Lasers, 2011, 38(3): 0302004.

[12] 徐佳,吴思达,刘江, 等. 基于氧化石墨烯被动锁模的窄线宽皮秒脉冲掺铒光纤激光器[J]. 中国激光, 2012, 39(7): 0702002.

    Xu Jia, Wu Sida, Liu Jiang, et al.. Narrow line-width picosecond erbium-doped fiber lasers passively mode-locked with graphene oxide[J]. Chinese J Lasers, 2012, 39(7): 0702002.

[13] J Xu, S D Wu, H H Li, et al.. Dissipative soliton generation from a graphene oxide mode-locked Er-doped fiber laser[J]. Opt Express, 2012, 20(21): 23653-23658.

[14] J Xu, J Liu, S D Wu, et al.. Graphene oxide mode-locked femtosecond erbium-doped fiber lasers [J]. Opt Express, 2012, 20(14): 15474-15480.

[15] J Liu, S Wu, J Xu, et al.. Mode-locked 2 μm thulium-doped fiber laser with graphene oxide saturable absorber[C]. Quantum Electronics and Laser Science Conference, 2012. JW2A. 76.

[16] N I Kovtyukhova, P J Ollivier, B R Martin, et al.. Layer-by-layer assembly of ultrathin composite films from micron-sized graphite oxide sheets and polycations[J]. Chemistry of Materials, 1999, 11(3): 771-778.

[17] 徐佳,吴思达,刘江, 等. 氧化石墨烯被动调Q掺铒光纤激光器[J]. 强激光与粒子束, 2012, 24(12): 2783-2786.

    Xu Jia, Wu Sida, Liu Jiang, et al.. Passively Q-switched erbium-doped fiber laser with graphene oxide saturable absorber[J]. High Power Laser and Particle Beams, 2012, 24(12): 2783-2786.

[18] G Sobon, J Sotor, J Jagiello, et al.. Graphene oxide vs reduced graphene oxide as saturable absorbers for Er-doped passively mode-locked fiber laser[J]. Opt Express, 2012, 20(17): 19463-19473.

[19] 高玉欣, 徐文成, 罗智超, 等. 环形腔光纤激光器中光谱边带不对称性特性研究[J]. 光学学报, 2010, 30(1): 132-136

    Gao Yuxin, Xu Wencheng, Luo Zhichao, et al.. Characteristics of the sideband asymmetry in a fiber ring laser[J]. Acta Optica Sinica, 2010, 30(1): 132-136.

徐佳, 吴思达, 刘江, 孙若愚, 谭方舟, 杨全红, 王璞. 被动锁模的传统孤子、耗散孤子掺铒光纤激光器[J]. 中国激光, 2013, 40(7): 0702003. Xu Jia, Wu Sida, Liu Jiang, Sun Ruoyu, Tan Fangzhou, Yang Quanhong, Wang Pu. Passively Mode-Locked Traditional Soliton, Dissipative Soliton Er-Doped Fiber Lasers[J]. Chinese Journal of Lasers, 2013, 40(7): 0702003.

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