The electron beam of the linear induction accelerator with kiloampere current as a driver for the submillimeter free electron laser
- Autores: Sandalov E.S.1, Protas R.V.2, Peskov N.Y.1,3, Ginzburg N.S.1,3, Pavlyuchenko V.A.1, Skovorodin D.I.1, Nikiforov D.A.1, Arzhannikov A.V.1, Sinitsky S.L.1, Karasev D.Y.2
- 
							Afiliações: 
							- Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
- Russian Federal Nuclear Center – Zababakhin All-Russia Research Institute of Technical Physics
- Federal Research Center Institute of Applied Physics of the Russian Academy of Sciences
 
- Edição: Volume 87, Nº 5 (2023)
- Páginas: 652-659
- Seção: Articles
- URL: https://kld-journal.fedlab.ru/0367-6765/article/view/654400
- DOI: https://doi.org/10.31857/S0367676522701228
- EDN: https://elibrary.ru/AAEXFF
- ID: 654400
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		                                					Resumo
The project of a submillimeter free electron laser (FEL) based on a relativistic electron beam (REB) generated in a linear induction accelerator (LIA) was proposed at the BINP SB RAS together with the IAP RAS. According to our theoretical analysis, the electron beam generated in the LIA (energy \({{E}_{e}} = 5{\text{--}}10\) MeV, current \({{I}_{b}} = 1{\text{--}}2\) kA, normalized emittance \({{\varepsilon }_{n}}\) ~ 1100 π · mm · mrad) is a suitable driver for generating sub-GW pulses of coherent EM radiation in submm range (0.3–1 THz). The main proposals for the creation of the FEL based on the electron beam generated in the LIA are presented, the main project tasks are outlined, and the proposed methods for their solution are described. The results of electron-optical experiments on the formation of an electron beam intended for FEL applications are presented.
Sobre autores
E. Sandalov
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
							Autor responsável pela correspondência
							Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk						
R. Protas
Russian Federal Nuclear Center – Zababakhin All-Russia Research Institute of Technical Physics
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 456770, Snezhinsk						
N. Peskov
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Federal Research Center Institute of Applied Physics of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk; Russia, 603950, Nizhny Novgorod						
N. Ginzburg
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences; Federal Research Center Institute of Applied Physics of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk; Russia, 603950, Nizhny Novgorod						
V. Pavlyuchenko
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk						
D. Skovorodin
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk						
D. Nikiforov
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk						
A. Arzhannikov
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk						
S. Sinitsky
Budker Institute of Nuclear Physics of the Siberian Branch of the Russian Academy of Sciences
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 630090, Novosibirsk						
D. Karasev
Russian Federal Nuclear Center – Zababakhin All-Russia Research Institute of Technical Physics
														Email: E.S.Sandalov@inp.nsk.su
				                					                																			                												                								Russia, 456770, Snezhinsk						
Bibliografia
- Arzhannikov A.V., Ginzburg N.S., Malkin A.M. et al. // Proc. 44th Int. Conf. on Infrared, Millimeter, and Terahertz Waves (Paris, 2019). Art. No. 5864231.
- Peskov N.Yu., Arzhannikov A.V., Ginzburg N.S. et al. // Proc. SPIE. 2020. V. 11582. Art. No. 1158207.
- Логачев П.В., Кузнецов Г.И., Корепанов А.А. и др. // ПТЭ. 2013. № 6. С. 42.
- Nikiforov D.A., Blinov M.F., Fedorov V.V. et al. // Phys. Part. Nucl. Lett. 2020. V. 17. P. 197.
- Sandalov E.S., Sinitsky S.L., Skovorodin D.I. et al. // 2021 IEEE International Conf. on Plasma Science (Lake Tahoe, 2021). Art. No. 21360392
- Ekdahl C. // IEEE Trans. Plasma Sci. 2022. V. 30. No. 1. P. 254.
- Ekdahl C., Sinitsky S.L., Skovorodin D.I. et al. // IEEE Trans. Plasma Sci. 2006. V. 34. P. 460.
- Merle E., Anthouard Ph., Bardy J. et al. // Proc. 5th European Conference EPAC 96 (Sitges, 1996). Report EPAC-1996-THP014G.
- Ekdahl C. // Beam dynamics for ARIA. Tech. Rep. LA-UR-14-274454. Los Alamos: Los Alamos Nat. Lab., 2014.
- Ekdahl C. // IEEE Trans. Plasma Sci. 2015. V. 43. No. 12. P. 4123.
- Ekdahl C. // IEEE Trans. Plasma Sci. 2021. V. 49. No. 10. P. 3092.
- Crawford M., Barraza J. // Proc. 2017 IEEE 21st Int. Conf. Pulsed Power (Brighton, 2017). P. 1.
- Ekdahl C. Beam dynamics for the Scorpius conceptual design report. Tech. Rep. LA-UR-17-29176. Santa Fe: Los Alamos Nat. Lab., 2017.
- Ekdahl C. // IEEE Tran. Plasma Sci. 2021. V. 49. No. 11. P. 3548.
- Panofsky W.K.H., Bander M. // Rev. Sci. Instrum. 1968. V. 39. P. 206.
- Neil V.K., Hall L.S., Cooper R.K. // Particle Accel. 1979. V. 9. No. 4. P. 213.
- Ekdahl C., Coleman J.E., McCuistian B.T. // IEEE Trans. Plasma Sci. 2016. V. 44. No. 7. P. 1094.
- Faries W., Gehring K.A., Richards P.L. et al. // Phys. Rev. 1969. V. 180. No. 2. P. 363.
- Morris J.R., Shen Y.R. // Opt. Commun. 1971. V. 3. No. 2. P. 81.
- Gallerano G.P., Doria A., Giovenale E. // Terahertz Sci. Technol. 2014. V. 7. No. 4. P. 160.
- Jeong Y.U., Lee B.C., Kim S.K. et al. // Nucl. Instrum. Meth. Phys. Res. A. 2001. V. 475. P. 47.
- Byrd J.M., Leemans W. P., Loftsdottir A. et al. // Phys. Rev. Lett. 2002. V. 89. Art. No. 224801.
- Carr G.L., Martin M.C., McKinney W.R. et al. // Nature. 2002. V. 420. P. 153.
- Gover A., Faingersha A., Eliran A. et al. // Nucl. Instrum. Meth. Phys. Res. A. 2004. V. 528. P. 23.
- Van Der Meer A.F.G. // Nucl. Instrum. Meth. Phys. Res. A. 2004. V. 528. P. 8.
- Prazeres R., Glotin F., Ortega J.M. et al. // Nucl. Instrum. Meth. Phys. Res. A. 2004. V. 528. P. 83.
- Shevchenko O.A., Arbuzov V.S., Vinokurov N.A. et al. // Phys. Procedia. 2016. V. 84. P. 13.
- Kulipanov G.N., Bagryanskaya E.G., Chesnokov E.N. IEEE Trans. THz Sci. Technol. 2015. V. 5. No. 5. P. 798.
- Sandalov E.S., Sinitsky S.L., Nikiforov D.A. et al. // 46th International Conference on Infrared, Millimeter and Terahertz Waves (IRMMW-THz, 2021). P. 1.
- Sandalov E.S., Sinitsky S.L., Skovorodin D.I. et al. // IEEE Trans. Plasma Sci. 2021. V. 49. No. 2. P. 718.
- Nikiforov D.A., Petrenko A.V., Sinitsky S.L. et al. // J. Instrum. 2021. V. 16. Art. No. 11024.
- Ekdahl C. // IEEE Trans. Plasma Sci. 2019. V. 47. No. 1. P. 300.
- Godfrey B.B., Hughes T.P. // 1989 IEEE Particle Accelerator Conference “Accelerator Science and Technology”. V. 2. P. 1023.
- Сандалов Е.С., Синицкий С.Л., Сковородин Д.И. и др. // Сибир. физ. журн. 2022. Т. 17. № 1. С. 5.
- Ginzburg N.S., Zaslavskii V.Y., Zotova I.V. et al. // JETP Lett. 2010. V. 91. P. 266.
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