• Chinese Optics Letters
  • Vol. 19, Issue 9, 091405 (2021)
Fei Wang, Haitao Huang*, Haiwei Chen, Yushuo Bao, Zihan Li, and Deyuan Shen
Author Affiliations
  • School of Physics and Electronic Engineering, Jiangsu Normal University, Xuzhou 221116, China
  • show less
    DOI: 10.3788/COL202119.091405 Cite this Article Set citation alerts
    Fei Wang, Haitao Huang, Haiwei Chen, Yushuo Bao, Zihan Li, Deyuan Shen. GSA and ESA dual-wavelength pumped 2.3 μm Tm:YLF laser on the 3H43H5 transition[J]. Chinese Optics Letters, 2021, 19(9): 091405 Copy Citation Text show less
    References

    [1] F. Canbaz, I. Yorulmaz, A. Sennaroglu. Kerr-lens mode-locked 2.3-µm Tm3+:YLF laser as a source of femtosecond pulses in the mid-infrared. Opt. Lett., 42, 3964(2017).

    [2] I. Yorulmaz, A. Sennaroglu. Low-threshold diode-pumped 2.3-µm Tm3+:YLF lasers. IEEE J. Sel. Top. Quantum Electron., 24, 1601007(2018).

    [3] A. Muti, M. Tonelli, V. Petrov, A. Sennaroglu. Continuous-wave mid-infrared laser operation of Tm3+:KY3F10 at 2.3 µm. Opt. Lett., 44, 3242(2019).

    [4] A. Muti, F. Canbaz, M. Tonelli, J. E. Bae, F. Rotermund, V. Petrov, A. Sennaroglu. Graphene mode-locked operation of Tm3+:YLiF4 and Tm3+:KY3F10 lasers near 2.3  µm. Opt. Lett., 45, 656(2020).

    [5] A. Muti, I. Baylam, M. Tonelli, A. Sennaroglu. Tunable continuous-wave laser operation of Tm3+:BaY2F8 near 2.3 µm. Opt. Lett., 45, 4104(2020).

    [6] J. Kwiatkowski. Power and spectral analyses in diode-pumped c-cut Pbnm Tm:YAP laser. Chin. Opt. Lett., 18, 091401(2020).

    [7] C. Li, Y. X. Leng, J. J. Huo. ReSe2 as a saturable absorber in a Tm-doped yttrium lithium fluoride (Tm:YLF) pulse laser. Chin. Opt. Lett., 17, 011402(2019).

    [8] H. T. Huang, S. Q. Wang, H. W. Chen, O. L. Antipov, S. S. Balabanov, D. Y. Shen. High power simultaneous dual-wavelength CW and passively-Q-switched laser operation of LD pumped Tm:YLF at 1.9 and 2.3 µm. Opt. Express, 27, 38593(2019).

    [9] S. Q. Wang, H. T. Huang, H. W. Chen, X. Liu, S. D. Liu, J. L. Xu, D. Y. Shen. High efficiency nanosecond passively Q-switched 2.3 µm Tm:YLF laser using a ReSe2-based saturable output coupler. OSA Continuum, 2, 1676(2019).

    [10] E. Kifle, P. Loiko, L. Guillemot, J. L. Doualan, F. Starecki, A. Braud, T. Georges, J. Rouvillain, P. Camy. Watt-level diode-pumped thulium lasers around 2.3 µm. Appl. Opt., 59, 7530(2020).

    [11] A. Tyazhev, F. Starecki, S. Cozic, P. Loiko, L. Guillemot, A. Braud, F. Joulain, M. Tang, T. Godin, A. Hideur, P. Camy. Watt-level efficient 2.3  µm thulium fluoride fiber laser. Opt. Lett., 45, 5788(2020).

    [12] X. Chao, J. B. Jeffries, R. K. Hanson. Real-time, in situ, continuous monitoring of CO in a pulverized-coal-fired power plant with a 2.3 µm laser absorption sensor. Appl. Phys. B, 110, 359(2013).

    [13] F. J. McAleavey, J. O’Gorman, J. F. Donegan, B. D. MacCraith, J. Hegarty, G. Maze. Narrow linewidth, tunable Tm3+-doped fluoride fiber laser for optical-based hydrocarbon gas sensing. IEEE J. Sel. Top. Quantum Electron., 3, 1103(1997).

    [14] J. T. Olesberg, M. A. Arnold, C. Mermelstein, J. Schmitz, J. Wagner. Tunable laser diode system for noninvasive blood glucose measurements. Appl. Spectrosc., 59, 1480(2005).

    [15] S. T. Fard, W. Hofmann, P. T. Fard, G. Böhm, M. Ortsiefer, E. Kwok, M.-C. Amann, L. Chrostowski. Optical absorption glucose measurements using 2.3-µm vertical-cavity semiconductor lasers. IEEE Photon. Technol. Lett., 20, 930(2008).

    [16] J. Wagner, Ch. Mann, M. Rattunde, G. Weimann. Infrared semiconductor lasers for sensing and diagnostics. Appl. Phys. A, 78, 505(2004).

    [17] Y. Morova, M. Tonelli, V. Petrov, A. Sennaroglu. Upconversion pumping of a 2.3 µm Tm3+:KY3F10 laser with a 1064 nm ytterbium fiber laser. Opt. Lett., 45, 931(2020).

    [18] L. Guillemot, P. Loiko, R. Soulard, A. Braud, J. L. Doualan, A. Hideur, R. Moncorgé, P. Camy. Thulium laser at ∼2.3 µm based on upconversion pumping. Opt. Lett., 44, 4071(2019).

    [19] P. Loiko, R. Soulard, L. Guillemot, G. Brasse, J. L. Doulan, A. Braud, A. Tyazhev, A. Hideur, B. Guichardaz, F. Druon, P. Camy. Efficient Tm:LiYF4 lasers at ∼2.3 µm: effect of energy-transfer upconversion. IEEE J. Quantum Electron., 55, 1700212(2019).

    [20] L. Guillemot, P. Loiko, R. Soulard, A. Braud, J. L. Doualan, A. Hideur, P. Camy. Close look on cubic Tm:KY3F10 crystal for highly efficient lasing on the 3H4 → 3H5 transition. Opt. Express, 28, 3451(2020).

    [21] W. L. Gao, J. Ma, G. Q. Xie, J. Zhang, D. W. Luo, H. Yang, D. Y. Tang, J. Ma, P. Yuan, L. J. Qian. Highly efficient 2 µm Tm:YAG ceramic laser. Opt. Lett., 37, 1076(2012).

    [22] O. L. Antipov, A. A. Novikov, N. G. Zakharov, A. P. Zinoviev. Optical properties and efficient laser oscillation at 2066 nm of novel Tm:Lu2O3 ceramics. Opt. Mater. Express, 2, 183(2012).

    [23] O. H. Sapir, J. Munch, D. J. Ottaway. Mid-infrared fiber lasers at and beyond 3.5 µm using dual-wavelength pumping. Opt. Lett., 39, 493(2014).

    [24] L. Guillemot, P. Loiko, A. Braud, J. Doualan, A. Hideur, M. Koselja, R. Moncorge, P. Camy. Continuouswave Tm:YAlO3 laser at ∼2.3  µm. Opt. Lett., 44, 5077(2019).

    CLP Journals

    [1] Qianqian Hao, Wenxin Liu, Yuqian Zu, Yangxiao Wang, Jie Liu, Liangbi Su. Highly efficient dual-wavelength acousto-optically Q-switched Tm,La:CaF2 laser[J]. Chinese Optics Letters, 2022, 20(11): 111402

    Data from CrossRef

    [1] Weichao Yao, Hiyori Uehara, Enhao Li, Ryo Yasuhara. Power-scalable two-wavelength pumped Er:YAP laser at 2.9 μm. Optics & Laser Technology, 152, 108073(2022).

    Fei Wang, Haitao Huang, Haiwei Chen, Yushuo Bao, Zihan Li, Deyuan Shen. GSA and ESA dual-wavelength pumped 2.3 μm Tm:YLF laser on the 3H43H5 transition[J]. Chinese Optics Letters, 2021, 19(9): 091405
    Download Citation