One of the fundamental directions in the development of lasers based on self-terminating transitions (RM transitions) in metal atoms and ions is their application in brightness amplification systems. Improving such systems requires expanding the operational spectral range and increasing the pulse repetition frequency. A promising approach to addressing these challenges is the use of a new class of high-speed high-frequency switches based on a slit discharge (eptrons) for pumping RM lasers, particularly those operating in the UV range. Within the framework of this approach, this paper studies the frequency-energy characteristics of a mercury ion RM laser (λ = 398.4 nm). The use of a high-speed slit-discharge switch made it possible to generate voltage pulses with a rise time of 2–3 ns across the electrodes of a gas-discharge tube and achieve lasing in a double-pulse mode at repetition frequencies up to 300 kHz.It was determined that the laser pulse energy strongly depends on temperature and repetition frequency, with the optimal frequency decreasing as the temperature increases. Lasing in the form of bursts consisting of four pulses has been demonstrated. The achieved high pulse repetition frequencies of the laser radiation along with its short wavelength can contribute to the creation of unique brightness amplification systems based on the Hg+ RM laser.
mercury vapor laser, laser radiation, self-terminating laser, nanosecond switch, eptron
1. Trigub M.V., Gembukh P.I., Vasnev N.A., Shiyanov D.V. Lazernyi monitor dlya odnovremennoi vizualizatsii v vidimom i blijnem IK-diapazonakh spektra // Optika atmosf. i okeana. 2023. V. 36, N 3. P. 239–243. DOI: 10.15372/AOO20230310; Trigub M.V., Gembukh P.I., Vasnev N.A., Shiyanov D.V. Laser monitor for simultaneous imaging in the VIS and near-IR spectral regions // Atmos. Ocean. Opt. 2023. V. 36, N 4. P. 415–420.
2. Trigub M.V., Vasnev N.A. Osobennosti formirovaniya izobrajeniya v bistaticheskom lazernom monitore // Optika atmosf. i okeana. 2022. V. 35, N 12. P. 1058–1063. DOI: 10.15372/AOO20221214; Trigub M.V., Vasnev N.A. Features of imaging in a bistatic laser active optical system // Atmos. Ocean. Opt. 2023. V. 36, N 2. P. 185–190.
3. Trigub M.V., Vasnev N.A., Kitler V.D., Evtushenko G.S. Primenenie bistaticheskogo lazernogo monitora dlya vysokoskorostnoi vizualizatsii protsessov goreniya // Optika atmosf. i okeana. 2020. V. 33, N 12. P. 962–966. DOI: 10.15372/AOO20201210; Trigub M.V., Vasnev N.A., Kitler V.D., Evtushenko G.S. The use of a bistatic laser monitor for high-speed imaging of combustion processes // Atmos. Ocean. Opt. 2021. V. 34, N 2. P. 154–159.
4. Evtushenko G., Torgaev S., Trigub M., Shiyanov D., Bushuev E., Bolshakov A., Zemskov K., Savransky V., Ralchenko V., Konov V. Laser monitor for imaging single crystal diamond growth in H2–CH4 microwave plasma // Opt. Laser Technol. 2019. V. 120. P. 105716. DOI: 10.1016/j.optlastec.2019.105716.
5. Trigub M.V., Platonov V.V., Evtushenko G.S., Osipov V.V., Evtushenko T.G. Laser monitors for high speed imaging of materials modification and production // Vacuum. 2017. V. 143. P. 486–490. DOI: 10.1016/j.vacuum.2017.03.016.
6. Evtushenko G.S. Methods and Instruments for Visual and Optical Diagnostics of Objects and Fast Processes. Nova Science Publishers Inc., 2018. 236 p.
7. Little C.E. Metal Vapor Lasers: Physics, Engineering & Applications. Chichester: John Willey & Sons, 1998. 620 p.
8. Batenin V.M., Boichenko A.M., Buchanov V.V. Lazery na samoogranichennykh perekhodakh atomov metallov – 2. M.: FIZMATLIT, 2009. V. 1. 544 p.
9. Soldatov A.N., Yudin N.A., Vasil'eva A.V., Kolmakov E.A., Polunin Yu.P., Kostyrya I.D. Lazer na parakh strontsiya s chastotoi sledovaniya impul'sov generatsii do 1 MGts // Kvant. elektron. 2012. V. 42, N 1. P. 31–33.
10. Boichenko A.M., Evtushenko G.S., Nekhoroshev V.O., Shiyanov D.V., Torgaev S.N. CuBr–Ne–HBr laser with a high repetition frequency of the lasing pulses at a reduced energy deposition in the discharge // Phys. Wave Phenom. 2015. V. 23. P. 1–13. DOI: 10.3103/S1541308X1501001X.
11. Lavrukhin M.A., Bokhan P.A., Gugin P.P., Zakrevsky D.E. Self-terminating barium ion laser at 614.2 nm // Opt. Laser Technol. 2022. V. 149. P. 107625. DOI: 10.1016/j.optlastec.2021.107625.
12. Lavrukhin M.A., Bokhan P.A., Gugin P.P., Zakrevsky D.E. 100-kHz RM calcium ion NIR laser // Opt. Laser Technol. 2024. V. 170. P. 110174. DOI: 10.1016/j.optlastec.2023.110174.
13. Isaev A.A., Petrash G.G. New superradiance on the violet line of the mercury ion // J. Appl. Spectrosc. 1970. V. 12. P. 835–837.
14. Markova S.V., Pavlenko Yu.P., Petrash G.G. Lazer na samoogranichennom perekhode iona rtuti // Kratkie soobshcheniya po fizike. 1992. N 12. P. 53–57.
15. Markova S.V., Petrash G.G. Impul'snyi lazer na r–m-perekhode iona rtuti // Kvant. elektron. 1995. V. 22, N 9. P. 873–877.