• Photonics Research
  • Vol. 8, Issue 2, 202 (2020)
Mostafa Peysokhan1、2, Esmaeil Mobini1、2, Arman Allahverdi2、3, Behnam Abaie1、2, and Arash Mafi1、2、*
Author Affiliations
  • 1Department of Physics and Astronomy, University of New Mexico, Albuquerque, New Mexico 87131, USA
  • 2Center for High Technology Materials, University of New Mexico, Albuquerque, New Mexico 87106, USA
  • 3Department of Electrical and Computer Engineering, University of New Mexico, Albuquerque, New Mexico 87131, USA
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    DOI: 10.1364/PRJ.380615 Cite this Article Set citation alerts
    Mostafa Peysokhan, Esmaeil Mobini, Arman Allahverdi, Behnam Abaie, Arash Mafi. Characterization of Yb-doped ZBLAN fiber as a platform for radiation-balanced lasers[J]. Photonics Research, 2020, 8(2): 202 Copy Citation Text show less
    References

    [1] D. J. Richardson, J. Nilsson, W. A. Clarkson. High power fiber lasers: current status and future perspectives [invited]. J. Opt. Soc. Am. B, 27, B63-B92(2010).

    [2] M. N. Zervas, C. A. Codemard. High power fiber lasers: a review. IEEE J. Sel. Top. Quantum Electron., 20, 219-241(2014).

    [3] D. C. Brown, H. J. Hoffman. Thermal, stress, and thermo-optic effects in high average power double-clad silica fiber lasers. IEEE J. Quantum Electron., 37, 207-217(2001).

    [4] L. Zenteno. High-power double-clad fiber lasers. J. Lightwave Technol., 11, 1435-1446(1993).

    [5] B. Ward, C. Robin, I. Dajani. Origin of thermal modal instabilities in large mode area fiber amplifiers. Opt. Express, 20, 11407-11422(2012).

    [6] J. W. Dawson, M. J. Messerly, R. J. Beach, M. Y. Shverdin, E. A. Stappaerts, A. K. Sridharan, P. H. Pax, J. E. Heebner, C. W. Siders, C. Barty. Analysis of the scalability of diffraction-limited fiber lasers and amplifiers to high average power. Opt. Express, 16, 13240-13266(2008).

    [7] C. Jauregui, T. Eidam, H.-J. Otto, F. Stutzki, F. Jansen, J. Limpert, A. Tünnermann. Physical origin of mode instabilities in high-power fiber laser systems. Opt. Express, 20, 12912-12925(2012).

    [8] R. I. Epstein, M. I. Buchwald, B. C. Edwards, T. R. Gosnell, C. E. Mungan. Observation of laser-induced fluorescent cooling of a solid. Nature, 377, 500-503(1995).

    [9] D. V. Seletskiy, S. D. Melgaard, S. Bigotta, A. Di Lieto, M. Tonelli, M. Sheik-Bahae. Laser cooling of solids to cryogenic temperatures. Nat. Photonics, 4, 161-164(2010).

    [10] S. R. Bowman. Lasers without internal heat generation. IEEE J. Quantum Electron., 35, 115-122(1999).

    [11] S. R. Bowman, S. P. O’Connor, S. Biswal, N. J. Condon, A. Rosenberg. Minimizing heat generation in solid-state lasers. IEEE J. Quantum Electron., 46, 1076-1085(2010).

    [12] S. R. Bowman. Low quantum defect laser performance. Opt. Eng., 56, 011104(2016).

    [13] Z. Yang, J. Meng, A. R. Albrecht, M. Sheik-Bahae. Radiation-balanced Yb:YAG disk laser. Opt. Express, 27, 1392-1400(2019).

    [14] E. Mobini, M. Peysokhan, B. Abaie, M. P. Hehlen, A. Mafi. Spectroscopic investigation of Yb-doped silica glass for solid-state optical refrigeration. Phys. Rev. Appl., 11, 014066(2019).

    [15] C. Mungan, M. Buchwald, B. Edwards, R. Epstein, T. Gosnell. Laser cooling of a solid by 16  K starting from room temperature. Phys. Rev. Lett., 78, 1030-1033(1997).

    [16] X. Luo, M. D. Eisaman, T. R. Gosnell. Laser cooling of a solid by 21  K starting from room temperature. Opt. Lett., 23, 639-641(1998).

    [17] T. Gosnell. Laser cooling of a solid by 65  K starting from room temperature. Opt. Lett., 24, 1041-1043(1999).

    [18] A. Rayner, M. Hirsch, N. R. Heckenberg, H. Rubinsztein-Dunlop. Distributed laser refrigeration. Appl. Opt., 40, 5423-5429(2001).

    [19] J. Knall, A. Arora, M. Bernier, S. Cozic, M. J. F. Digonnet. Demonstration of anti-Stokes cooling in Yb-doped ZBLAN fibers at atmospheric pressure. Opt. Lett., 44, 2338-2341(2019).

    [20] E. Mobini, M. Peysokhan, B. Abaie, A. Mafi. Thermal modeling, heat mitigation, and radiative cooling for double-clad fiber amplifiers. J. Opt. Soc. Am. B, 35, 2484-2493(2018).

    [21] S. Melgaard, D. Seletskiy, V. Polyak, Y. Asmerom, M. Sheik-Bahae. Identification of parasitic losses in Yb:YLF and prospects for optical refrigeration down to 80 K. Opt. Express, 22, 7756-7764(2014).

    [22] M. Peysokhan, E. Mobini, B. Abaie, A. Mafi. Method for measuring the resonant absorption coefficient of rare-earth-doped optical fibers. Appl. Opt., 58, 1841-1846(2019).

    [23] T. Newell, P. Peterson, A. Gavrielides, M. Sharma. Temperature effects on the emission properties of Yb-doped optical fibers. Opt. Commun., 273, 256-259(2007).

    [24] B. Aull, H. Jenssen. Vibronic interactions in Nd: Yag resulting in nonreciprocity of absorption and stimulated emission cross sections. IEEE J. Quantum Electron., 18, 925-930(1982).

    [25] M. Peysokhan, E. M. Souchelmaei, B. Abaie, A. Mafi. A non-destructive method for measuring the absorption coefficient of a doped optical fiber. Proc. SPIE, 10936, 109360K(2019).

    [26] M. Peysokhan, E. Mobini, B. Abaie, A. Mafi. A non-destructive method for measuring the absorption coefficient of a Yb-doped fiber. Laser Science, JW3A–138(2018).

    [27] D. McCumber. Einstein relations connecting broadband emission and absorption spectra. Phys. Rev., 136, A954-A957(1964).

    [28] I. Kelson, A. A. Hardy. Strongly pumped fiber lasers. IEEE J. Quantum Electron., 34, 1570-1577(1998).

    [29] H. Malik, K. Maqsood. Effect of distilled water on the optical properties and surface degradation of Zr-Ba based glass. J. Mater. Sci., 37, 5367-5369(2002).

    [30] A. P. Rizzato, C. V. Santilli, S. H. Pulcinelli, Y. Messaddeq, P. Hammer. XPS study of the corrosion protection of fluorozirconate glasses dip-coated with SnO2 transparent thin films. J. Sol-Gel Sci. Technol., 32, 155-160(2004).

    [31] A. P. Rizzato, C. V. Santilli, S. H. Pulcinelli, Y. Messaddeq, A. F. Craievich, P. Hammer. Study on the initial stages of water corrosion of fluorozirconate glasses. J. Non-Cryst. Solids, 348, 38-43(2004).

    [32] X. Zhu, N. Peyghambarian. High-power ZBLAN glass fiber lasers: review and prospect. Adv. OptoElectron., 2010, 501956(2010).

    [33] E. Mobini, M. Peysokhan, A. Mafi. Heat mitigation of a core/cladding Yb-doped fiber amplifier using anti-Stokes fluorescence cooling. J. Opt. Soc. Am. B, 36, 2167-2177(2019).

    [34] M. Peysokhan, B. Abaie, E. Mobini, S. Rostami, A. Mafi. Measuring quantum efficiency and background absorption of an ytterbium-doped ZBLAN fiber. CLEO: Applications and Technology, JW2A–118(2018).

    Mostafa Peysokhan, Esmaeil Mobini, Arman Allahverdi, Behnam Abaie, Arash Mafi. Characterization of Yb-doped ZBLAN fiber as a platform for radiation-balanced lasers[J]. Photonics Research, 2020, 8(2): 202
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