Expansion of Fiber Laser Wavelengths over 5 Microns
- Autores: Velmuzhov A.P.1, Galagan B.I.2, Denker B.I.2, Koltashev V.V.3, Sverchkov S.E.2, Snopatin G.E.1, Sukhanov M.V.1, Plotnichenko V.G.2
-
Afiliações:
- G.G. Devyatykh Institute of Chemistry of High-Purity Substances, RAS
- Prokhorov General Physics Institute, RAS
- Prokhorov General Physics Institute, RAS, Dianov Fiber Optics Research Center, RAS
- Edição: Volume 117, Nº 1 (2023): ТЕМАТИЧЕСКИЙ БЛОК: СОВРЕМЕННЫЕ ПРОБЛЕМЫ ФОТОНИКИ ИНФРАКРАСНОГО ДИАПАЗОНА
- Páginas: 122-136
- Seção: THEMED SECTION: FUNDAMENTAL SCIENTIFIC RESEARCH IN THE FIELD OF NATURAL SCIENCES
- URL: https://ogarev-online.ru/1605-8070/article/view/299573
- DOI: https://doi.org/10.22204/2410-4639-2023-117-01-122-136
- ID: 299573
Citar
Texto integral
Resumo
In this review we present the results of the interdisciplinary RFBR project N18-29-20079. The project was aimed on the creation of room-temperature bulk and fiber chalcogenide glass lasers operating at wavelengths exceeding 4 μm. Before this investigation this wavelength range was inaccessible for glass lasers. Record purity Pr3+, Tb3+, Ce3+ and Nd3+ doped chalcogenide glass samples were synthesized. The analysis of their luminescent properties has made it possible to choose the promising laser transitions and the ways of their optical pumping. Lasing has been demonstrated on a number of 4.5–6 μm optical transitions of Ce3+, Pr3+ and Tb3+ ions. Previously all these transitions were never used in lasers. In a bulk sample of cerium-doped selenide glass, an output energy of up to 43 mJ per pulse and tuning in the 4.5–5.6 µm spectral range were obtained. In a continuously pumped composite optical fiber with terbium-doped selenide core in an undoped sulfide cladding 100 mW output power at ~ 5.25 µm was obtained.
Palavras-chave
Sobre autores
Alexander Velmuzhov
G.G. Devyatykh Institute of Chemistry of High-Purity Substances, RAS
Autor responsável pela correspondência
Email: velmuzhov@ihps-nnov.ru
Rússia, 49 Tropinin Str., Nizhny Novgorod, 603951, Russia
Boris Galagan
Prokhorov General Physics Institute, RAS
Email: galagan@ran.gpi.ru
Rússia, 38 Vavilov Str., Moscow, 119991, Russia
Boris Denker
Prokhorov General Physics Institute, RAS
Email: denker@lst.gpi.ru
Professor
Rússia, 38 Vavilov Str., Moscow, 119991, RussiaVasily Koltashev
Prokhorov General Physics Institute, RAS,Dianov Fiber Optics Research Center, RAS
Email: kvv@fo.gpi.ru
Rússia, 38 Vavilova Str., Moscow, 119333, Russia
Sergei Sverchkov
Prokhorov General Physics Institute, RAS
Email: glasser@lst.gpi.ru
Rússia, 38 Vavilova Str., Moscow, 119333, Russia
Gennady Snopatin
G.G. Devyatykh Institute of Chemistry of High-Purity Substances, RAS
Email: snopatin@ihps-nnov.ru
Rússia, 49 Tropinin Str., Nizhny Novgorod, 603951, Russia
Maksim Sukhanov
G.G. Devyatykh Institute of Chemistry of High-Purity Substances, RAS
Email: sukhanov@ihps-nnov.ru
49 Tropinin Str., Nizhny Novgorod, 603951, Russia
Victor Plotnichenko
Prokhorov General Physics Institute, RAS
Email: v.plotnichenko@gmail.com
Professor
Rússia, 38 Vavilova Str., Moscow, 119333, RussiaBibliografia
- S.D. Jackson Nat. Photonics, 2012, 6, 423. doi: 10.1038/nphoton.2012.149.
- B.M. Walsh, H.R. Lee, N.P. Barnes J. Lumin., 2016, 169, 400. doi: 10.1016/j.jlumin.2015.03.004.
- M.P. Frolov, Yu.V. Korostelin, V.I. Kozlovsky, S.O. Leonov, P. Fjodorow, Ya.K. Skasyrsky Opt. Lett., 2020, 45(4), 6647. doi: 10.1364/OL.411559.
- M.P. Frolov, Yu.V. Korostelin, V.I. Kozlovsky, S.O. Leonov, Ya.K. Skasyrsky Opt. Express, 2020, 28(12), 17449. doi: 10.1364/OE.394889.
- M.P. Frolov, V.M. Gordienko, Yu.V. Korostelin, V.I. Kozlovsky, Yu.P. Podmar’kov, F.V. Potemkin, Ya.K. Skasyrsky Laser Phys. Lett., 2017, 14, 025001. doi: 10.1088/1612-202X/aa5130.
- M.P. Frolov, Yu.V. Korostelin, V.I. Kozlovsky, V.V. Mislavsky, Yu.P. Podmar’kov, Ya.K. Skasyrsky, A.A. Voronov J. Russ. Laser Res., 2011, 32, 528. doi: 10.1007/s10946-011-9243-x.
- J. Evans, B. Dolasinski, T. Harris, J. Cleary, P. Berry Opt. Express, 2017, 7 (3), 860. doi: 10.1364/OME.7.000860.
- H. Jelínková, M.E. Doroshenko, M. Jelínek, J. Šulc, D. Vyhlídal, A. Říha, N.O. Kovalenko, A.S. Gerasimenko Solid State Lasers XXVIII: Technology and Devices, 2019, 10896, 108961V. doi: 10.1117/12.2509387.
- F. Starecki, A. Braud, N. Abdellaoui, V. Nazabal, J.-L. Doualan, C. Boussard-Plédel, P. Camy In Proc. Laser Congress 2018 (ASSL) (USA, MA, Boston, 4–8 September, 2018), USA, MA, Boston, Optica Publishing Group, 2018, ATu2A.6. doi: 10.1364/ASSL.2018.ATu2A.6.
- F. Starecki, A. Braud, N. Abdellaoui, J.-L. Doualan, C. Boussard-Plédel, B. Bureau, P. Camy, V. Nazabal Opt. Express, 2018, 26(20), 26462. doi: 10.1364/OE.26.026462.
- N. Abdellaoui, F. Starecki, C. Boussard-Pledel, Y. Shpotyuk, J.-L. Doualan, A. Braud, E. Baudet, P. Nemec, F. Chevire, M. Dussauze, B. Bureau, P. Camy, V. Nazabal Opt. Mater. Express, 2018, 8(9), 2887. doi: 10.1364/OME.8.002887.
- B.N. Samson, T. Schweizer, R.C. Moore, D.W. Hewak, D.N. Payne In Technical Digest CLEO/Pacific Rim ‘97 Pacific Rim Conference on Lasers and Electro-Optics (Japan, Chiba, 14–18 July, 1997), Japan, Chiba, IEEE Publ., 1997, pp. 51-52. doi: 10.1109/CLEOPR.1997.610399.
- T. Schweizer, B. Samnson, R. Moore, D. Hewak, D. Payne Electron Lett., 1997, 33(5), 414. doi: 10.1049/el:19970270.
- A. Seddon, Z. Tang, D. Furniss, S. Sujecki, T. Benson Opt. Express, 2010, 18(25), 26704. doi: 10.1364/OE.18.026704.
- B. Walsh, H. Lee, N. Barnes J. Lumin., 2016, 169, 400. doi: 10.1016/j.jlumin.2015.03.004.
- S. Jackson, R. Jain Opt. Express, 2020, 28(21), 30964. doi: 10.1364/OE.400003.
- J. Heo, W.J. Chung In Chalcogenide Glases: Preparation, Properties and Applications, Eds J-L. Adam, X. Zhang, USA, PA, Philadelphia, Woodhead Publishing, 2014, 347–380. doi: 10.1533/9780857093561.2.347.
- Ł. Sójka, Z. Tang, H. Zhu, E. Bereś-Pawlik, D. Furniss, A. Seddon, T. Benson, S. Sujecki Opt. Mater. Express, 2012, 2(11), 1632. doi: 10.1364/OME.2.001632.
- M. Churbanov, B. Denker, B. Galagan, V. Koltashev, V. Plotnichenko, S. Sverchkov, M. Sukhanov, A. Velmuzhov Appl. Phys. B, 2020, 126, 117. doi: 10.1007/s00340-020-07473-w.
- M. Churbanov, B. Denker, B. Galagan, V. Koltashev, V. Plotnichenko, G. Snopatin, M. Sukhanov, S. Sverchkov, A. Velmuzhov J. Non-Cryst. Solids, 2021, 559, 120592. doi: 10.1016/j.jnoncrysol.2020.120592.
- B. Denker, B. Galagan, S. Sverchkov, V. Koltashev, V. Plotnichenko, M. Sukhanov, A. Velmuzhov, M. Frolov, Yu. Korostelin, V. Kozlovsky, S. Leonov, P. Fjodorow, Ya. Skasyrsky Opt. Lett., 2021, 46(16), 4002. doi: 10.1364/OL.431938.
- A. Velmuzhov, M. Sukhanov, V. Plotnichenko, A. Plekhovich, V. Shiryaev, M. Churbanov J. Non-Cryst. Solids, 2019, 525, 119669.
- doi: 10.1016/j.jnoncrysol.2019.119669.
- L. Calvez Comptes Rendes Physique, 2017, 18(5-6), 314. doi: 10.1016/j.crhy.2017.05.003.
- M. Churbanov, B. Denker, B. Galagan, V. Koltashev, V. Plotnichenko, M. Sukhanov, S. Sverchkov, A. Velmuzhov J. Lumin., 2022, 245, 118756. doi: 10.1016/j.jlumin.2022.118756.
- M. Churbanov, B. Denker, B. Galagan, V. Koltashev, V. Plotnichenko, M. Sukhanov, S. Sverchkov, A. Velmuzhov J. Lumin., 2021, 231, 117809. doi: 10.1016/j.jlumin.2020.117809.
- M. Churbanov, B. Denker, B. Galagan, V. Koltashev, V. Plotnichenko, M. Sukhanov, S. Sverchkov, A. Velmuzhov Opt. Mater. Express, 2019, 9(11), 4154. doi: 10.1364/OME.9.004154.
- L. Merkle, Z. Fleischman, E. Brown, J. Allen, U. Hommerich, M. Dubinskii Opt. Express, 2021, 29(24), 39001. doi: 10.1364/OE.441516.
- P. Fyodorov, M. Frolov, S. Leonov, B. Denker, B. Galagan, S. Sverchkov, V. Koltashev, V. Plotnichenko, M. Sukhanov,
- A. Velmuzhov Opt. Express, 2021, 29, 27674. doi: 10.1364/OE.433828.
- M. Frolov, S. Leonov, Yu. Korostelin, V. Kozlovsky, Ya. Srfsyrsky, M. Sukhanov, A. Velmuzhov, P. Fjodorow, B. Galagan, B. Denker,
- S. Sverchkov, V. Koltashev, V. Plotnichenko Opt. Mater. Express, 2022, 12(12), 4619. doi: 10.1364/OME.472550.
- V. Shiryaev, M. Sukhanov, A. Velmuzhov, E. Karaksina, T. Kotereva, G. Snopatin, B. Denker, B. Galagan, S. Sverchkov, V. Koltashev,
- V. Plotnichenko J. Non-Cryst. Solids, 2021, 567, 120939. doi: 10.1016/j.jnoncrysol.2021.120939.
- B. Denker, B. Galagan, V. Koltashev, V. Plotnichenko, G. Snopatin, M. Sukhanov, S. Sverchkov, A. Velmuzhov Opt. Laser Technol., 2022, 154, 108355. doi: 10.1016/j.optlastec.2022.108355.
Arquivos suplementares
