光学学报, 2018, 38 (6): 0614001, 网络出版: 2018-07-09   

基于双壁碳纳米管低阈值1895 nm锁模激光器 下载: 885次

Low Threshold 1895 nm Mode-Locked Laser Based on Double Wall Carbon Nanotubes
作者单位
1 天水师范学院激光技术研究所, 甘肃 天水 741001
2 陕西师范大学物理学与信息技术学院, 陕西 西安 710062
引用该论文

令维军, 夏涛, 董忠, 张明霞, 左银艳, 李可, 路飞平, 刘勍, 赵小龙, 王勇刚. 基于双壁碳纳米管低阈值1895 nm锁模激光器[J]. 光学学报, 2018, 38(6): 0614001.

Weijun Ling, Tao Xia, Zhong Dong, Mingxia Zhang, Yinyan Zuo, Ke Li, Feiping Lu, Qin Liu, Xiaolong Zhao, Yonggang Wang. Low Threshold 1895 nm Mode-Locked Laser Based on Double Wall Carbon Nanotubes[J]. Acta Optica Sinica, 2018, 38(6): 0614001.

参考文献

[1] 牟成博, 邹传杭, 黄千千, 等. 基于碳纳米管锁模光纤激光器的偏振锁定和偏振进动矢量孤子的研究进展[J]. 中国激光, 2017, 44(7): 0703003.

    牟成博, 邹传杭, 黄千千, 等. 基于碳纳米管锁模光纤激光器的偏振锁定和偏振进动矢量孤子的研究进展[J]. 中国激光, 2017, 44(7): 0703003.

    Mou C B, Zou C H, Huang Q Q, et al. Research progress in polarization lock and polarization processing vector soliton based on carbon nanotube mode-locked fiber laser[J]. Chinese Journal of Lasers, 2017, 44(7): 0703003.

    Mou C B, Zou C H, Huang Q Q, et al. Research progress in polarization lock and polarization processing vector soliton based on carbon nanotube mode-locked fiber laser[J]. Chinese Journal of Lasers, 2017, 44(7): 0703003.

[2] 韦晨, 史红霞, 罗鸿禹, 等. 基于二维材料调制的中红外脉冲光纤激光器的研究进展[J]. 中国激光, 2017, 44(7): 0703009.

    韦晨, 史红霞, 罗鸿禹, 等. 基于二维材料调制的中红外脉冲光纤激光器的研究进展[J]. 中国激光, 2017, 44(7): 0703009.

    Wei C, Shi H X, Luo H Y, et al. Research progress of pulsed mid-infrared fiber lasers using two-dimensional materials[J]. Chinese Journal of Lasers, 2017, 44(7): 0703009.

    Wei C, Shi H X, Luo H Y, et al. Research progress of pulsed mid-infrared fiber lasers using two-dimensional materials[J]. Chinese Journal of Lasers, 2017, 44(7): 0703009.

[3] Wang Y C, Chen W D, Mero M, et al. Sub-100 fs Tm∶MgWO4 laser at 2017 nm mode locked by a graphene saturable absorber[J]. Optics Letters, 2017, 42(16): 3076-3079.

    Wang Y C, Chen W D, Mero M, et al. Sub-100 fs Tm∶MgWO4 laser at 2017 nm mode locked by a graphene saturable absorber[J]. Optics Letters, 2017, 42(16): 3076-3079.

[4] Set SY, YaguchiH. Mode-locked fiber lasers based on a saturable absorber incorporating carbon nanotubes[C]. Optical Fiber Communications Conference, 2004: PD44.

    Set SY, YaguchiH. Mode-locked fiber lasers based on a saturable absorber incorporating carbon nanotubes[C]. Optical Fiber Communications Conference, 2004: PD44.

[5] Rotermund F. Mode-locking of solid-state lasers by single-walled carbon-nanotube based saturable absorbers[J]. Quantum Electronics, 2012, 42(8): 663-670.

    Rotermund F. Mode-locking of solid-state lasers by single-walled carbon-nanotube based saturable absorbers[J]. Quantum Electronics, 2012, 42(8): 663-670.

[6] Chen H R, Wang Y G, Tsai C Y, et al. High-power, passively mode-locked Nd∶GdVO4 laser using single-walled carbon nanotubes as saturable absorber[J]. Optics Letters, 2011, 36(7): 1284-1290.

    Chen H R, Wang Y G, Tsai C Y, et al. High-power, passively mode-locked Nd∶GdVO4 laser using single-walled carbon nanotubes as saturable absorber[J]. Optics Letters, 2011, 36(7): 1284-1290.

[7] Liu Y, Wang Y, Liu J, et al. High power ultrafast Nd∶YVO4, laser mode locked by single wall carbon nanotube absorber[J]. Applied Physics B, 2011, 104(4): 835.

    Liu Y, Wang Y, Liu J, et al. High power ultrafast Nd∶YVO4, laser mode locked by single wall carbon nanotube absorber[J]. Applied Physics B, 2011, 104(4): 835.

[8] Cho WB, Yim JH, Sun YC, et al. Single-walled carbon nanotube saturable absorber mode-locking of a Tm∶KLuW laser near 2 μm[C]. Advanced Solid-State Photonics, 2010, ATuA: ATuA3.

    Cho WB, Yim JH, Sun YC, et al. Single-walled carbon nanotube saturable absorber mode-locking of a Tm∶KLuW laser near 2 μm[C]. Advanced Solid-State Photonics, 2010, ATuA: ATuA3.

[9] Schmidt A, Choi S Y, Yeom D I, et al. Femtosecondpulses near 2 μm from a Tm∶KLuW laser mode-locked by a single-walled carbon nanotube saturable absorber[J]. Applied Physics Express, 2012, 5(9): 092704.

    Schmidt A, Choi S Y, Yeom D I, et al. Femtosecondpulses near 2 μm from a Tm∶KLuW laser mode-locked by a single-walled carbon nanotube saturable absorber[J]. Applied Physics Express, 2012, 5(9): 092704.

[10] Schmidt A, Koopmann P, Huber G, et al. 175 fs Tm∶Lu2O3 laser at 2.07 μm mode-locked using single-walled carbon nanotubes[J]. Optics Express, 2012, 20(5): 5313.

    Schmidt A, Koopmann P, Huber G, et al. 175 fs Tm∶Lu2O3 laser at 2.07 μm mode-locked using single-walled carbon nanotubes[J]. Optics Express, 2012, 20(5): 5313.

[11] Hasan T, Sun Z, Tan P, et al. Double-wall carbon nanotubes for wide-band, ultrafast pulse generation[J]. ACS Nano, 2014, 8(5): 4836-4847.

    Hasan T, Sun Z, Tan P, et al. Double-wall carbon nanotubes for wide-band, ultrafast pulse generation[J]. ACS Nano, 2014, 8(5): 4836-4847.

[12] Maeng I, Kang C, Oh S J, et al. Terahertz electrical and optical characteristics of double-walled carbon nanotubes and their comparison with single-walled carbon nanotubes[J]. Applied Physics Letters, 2007, 90(5): 051914.

    Maeng I, Kang C, Oh S J, et al. Terahertz electrical and optical characteristics of double-walled carbon nanotubes and their comparison with single-walled carbon nanotubes[J]. Applied Physics Letters, 2007, 90(5): 051914.

[13] Yang Q, Wang Y G, Liu D H, et al. Dual-wavelength mode-locked Yb∶LuYSiO5 laser with a double-walled carbon nanotube saturable absorber[J]. Laser Physics Letters, 2012, 9(2): 135-140.

    Yang Q, Wang Y G, Liu D H, et al. Dual-wavelength mode-locked Yb∶LuYSiO5 laser with a double-walled carbon nanotube saturable absorber[J]. Laser Physics Letters, 2012, 9(2): 135-140.

[14] Hertel T, Hagen A, Talalaev V, et al. Spectroscopy of single- and double-wall carbon nanotubes in different environments[J]. Nano Letters, 2005, 5(3): 511-514.

    Hertel T, Hagen A, Talalaev V, et al. Spectroscopy of single- and double-wall carbon nanotubes in different environments[J]. Nano Letters, 2005, 5(3): 511-514.

[15] Zhang L, Wang Y G, Yu H J, et al. Passive mode-locked Nd∶YVO4, laser using a multi-walled carbon nanotube saturable absorber[J]. Laser Physics, 2011, 21(8): 1382-1386.

    Zhang L, Wang Y G, Yu H J, et al. Passive mode-locked Nd∶YVO4, laser using a multi-walled carbon nanotube saturable absorber[J]. Laser Physics, 2011, 21(8): 1382-1386.

[16] Cheng K N, Lin Y H, Lin G R. Single-and double-walled carbon nanotube based saturable absorbers for passive mode-locking of an erbium-doped fiber laser[J]. Laser Physics, 2013, 23(4): 045105.

    Cheng K N, Lin Y H, Lin G R. Single-and double-walled carbon nanotube based saturable absorbers for passive mode-locking of an erbium-doped fiber laser[J]. Laser Physics, 2013, 23(4): 045105.

[17] WangF, JiangZ, HasanT, et al. Double-wall carbon nanotube Q-switched and mode-locked two-micron fiber lasers[C]∥Proceedings of 2012 IEEE International Conference on Lasers and Electro-Optics, 2012: 13063752.

    WangF, JiangZ, HasanT, et al. Double-wall carbon nanotube Q-switched and mode-locked two-micron fiber lasers[C]∥Proceedings of 2012 IEEE International Conference on Lasers and Electro-Optics, 2012: 13063752.

[18] Qu Z S, Wang Y G, Liu J, et al. Passively mode-locked 2 μm Tm∶YAP laser with a double-wall carbon nanotube absorber[J]. Chinese Physics B, 2012, 21(1): 64211.

    Qu Z S, Wang Y G, Liu J, et al. Passively mode-locked 2 μm Tm∶YAP laser with a double-wall carbon nanotube absorber[J]. Chinese Physics B, 2012, 21(1): 64211.

[19] 乔亮, 羊富贵, 武永华, 等. Tm, Ho双掺调Q激光系统理论与实验研究[J]. 物理学报, 2014, 63(21): 137-143.

    乔亮, 羊富贵, 武永华, 等. Tm, Ho双掺调Q激光系统理论与实验研究[J]. 物理学报, 2014, 63(21): 137-143.

    Qiao L, Yang F G, Wu Y H, et al. Theoretical and experimental researches on Tm and Ho codoped Q-switching laser[J]. Acta Physica Sinica, 2014, 63(21): 137-143.

    Qiao L, Yang F G, Wu Y H, et al. Theoretical and experimental researches on Tm and Ho codoped Q-switching laser[J]. Acta Physica Sinica, 2014, 63(21): 137-143.

[20] 令维军, 夏涛, 董忠, 等. 基于WS2可饱和吸收体的调Q锁模Tm, Ho∶LLF激光器[J]. 物理学报, 2017, 66(11): 130-135.

    令维军, 夏涛, 董忠, 等. 基于WS2可饱和吸收体的调Q锁模Tm, Ho∶LLF激光器[J]. 物理学报, 2017, 66(11): 130-135.

    Ling W J, Xia T, Dong Z, et al. Passively Q-switched mode-locked Tm, Ho∶LLF laser with a WS2 saturable absorber[J]. Acta Physica Sinica, 2017, 66(11): 130-135.

    Ling W J, Xia T, Dong Z, et al. Passively Q-switched mode-locked Tm, Ho∶LLF laser with a WS2 saturable absorber[J]. Acta Physica Sinica, 2017, 66(11): 130-135.

[21] 马志军, 魏荣妃, 胡忠亮, 等. 2D材料和准2D材料的非线性光学特性及应用[J]. 中国激光, 2017, 44(7): 0703002.

    马志军, 魏荣妃, 胡忠亮, 等. 2D材料和准2D材料的非线性光学特性及应用[J]. 中国激光, 2017, 44(7): 0703002.

    Ma Z J, Wei R F, Hu Z L, et al. 2D materials and quasi-2D materials: nonlinear optical properties and corresponding applications[J]. Chinese Journal of Lasers, 2017, 44(7): 0703002.

    Ma Z J, Wei R F, Hu Z L, et al. 2D materials and quasi-2D materials: nonlinear optical properties and corresponding applications[J]. Chinese Journal of Lasers, 2017, 44(7): 0703002.

[22] 曲遵世, 马宝民, 刘杰. 基于碳纳米管的Tm∶YAP 2 μm脉冲激光特性实验研究[J]. 中国激光, 2011, 38(11): 1102009.

    曲遵世, 马宝民, 刘杰. 基于碳纳米管的Tm∶YAP 2 μm脉冲激光特性实验研究[J]. 中国激光, 2011, 38(11): 1102009.

    Qu Z S, Ma B M, Liu J. Research on pulse laser characteristics for 2 μm Tm∶YAP laser based on carbon nanotube absorber[J]. Chinese Journal of Lasers, 2011, 38(11): 1102009.

    Qu Z S, Ma B M, Liu J. Research on pulse laser characteristics for 2 μm Tm∶YAP laser based on carbon nanotube absorber[J]. Chinese Journal of Lasers, 2011, 38(11): 1102009.

令维军, 夏涛, 董忠, 张明霞, 左银艳, 李可, 路飞平, 刘勍, 赵小龙, 王勇刚. 基于双壁碳纳米管低阈值1895 nm锁模激光器[J]. 光学学报, 2018, 38(6): 0614001. Weijun Ling, Tao Xia, Zhong Dong, Mingxia Zhang, Yinyan Zuo, Ke Li, Feiping Lu, Qin Liu, Xiaolong Zhao, Yonggang Wang. Low Threshold 1895 nm Mode-Locked Laser Based on Double Wall Carbon Nanotubes[J]. Acta Optica Sinica, 2018, 38(6): 0614001.

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