Reuse & Permissions

It is not necessary to obtain permission to reuse this article or its components as it is available under the terms of the Creative Commons Attribution 3.0 License. This license permits unrestricted use, distribution, and reproduction in any medium, provided attribution to the author(s) and the published article's title, journal citation, and DOI are maintained. Please note that some figures may have been included with permission from other third parties. It is your responsibility to obtain the proper permission from the rights holder directly for these figures.

Export citation

Export citation

Choose format for download:

Download Citation
  • Open Access

Cyclotron radiation cooling of a short electron bunch kicked in an undulator with guiding magnetic field

I. V. Bandurkin1, I. V. Osharin1, and A. V. Savilov1,2

  • 1Institute of Applied Physics, Russian Academy of Sciences, Nizhny Novgorod 603950, Russia
  • 2Lobachevsky State University of Nizhny Novgorod, Nizhny Novgorod 603950, Russia

Phys. Rev. ST Accel. Beams 18, 110702 – Published 20 November, 2015

DOI: https://doi.org/10.1103/PhysRevSTAB.18.110702

Abstract

We propose to use of an undulator with the guiding axial magnetic field as a “kicker” forming a bunch of electron gyro-oscillators with a small spread in the axial velocity. The cyclotron emission from the bunch leads to losing oscillatory velocity of electron gyrorotation, but it does not perturb the axial electron velocity. This effect can be used for transformation of minimization of the spread in electron axial velocity in the undulator section into minimization of the spread in electron energy in the cyclotron radiation section.

View figure in article

Article Text

References (34)

  1. J. G. Power, in Proceedings of 14th Advanced Accelerator Concepts Workshop (AAC 2010), edited by S. H. Gold and G. S. Nusinovich (AIP, Melville, 2010), p. 163; AIP Conf. Proc. 1299, 20 (2010).
  2. B. Dunham, J. Barley, A. Bartnik, I. Bazarov, L. Cultrera, J. Dobbins, G. Hoffstaetter, B. Johnson, R. Kaplan, S. Karkare et al., Appl. Phys. Lett. 102, 034105 (2013).
  3. F. Stephan, C. H. Boulware, M. Krasilnikov, J. Bahr, G. Asova, A. Donat, U. Gensch, H. J. Grabosch, M. Hanel, L. Hakobyan et al., Phys. Rev. ST Accel. Beams 13, 020704 (2010).
  4. H. P. Freund and T. M. Antonsen, Principles of Free-Electron Lasers (Chapman & Hall, London, 1996).
  5. Z. Huang and K.-J. Kim, Phys. Rev. ST Accel. Beams 10, 034801 (2007).
  6. C. Bostedt, J. D. Bozek, P. H. Bucksbaum, R. N. Coffee, J. B. Hastings, Z. Huang, R. W. Lee, S. Schorb, J. N. Corlett, P. Denes et al., J. Phys. B 46, 164003 (2013).
  7. A. M. Sessler, Report No. LBL-38278 UC-427, 1996; Proceedings of the 31st Workshop: Crystalline beams and related issues, Erice, Sicily, Italy, 1995 (World Scientific, Singapore, 1996).
  8. J. L. Hirshfield and G. S. Park, Phys. Rev. Lett. 66, 2312 (1991).
  9. T. Ohgaki and I. Endo, Phys. Rev. ST Accel. Beams 4, 111001 (2001).
  10. D. Mohl and A. M. Sessler, Nucl. Instrum. Methods Phys. Res., Sect. A 532, 1 (2004).
  11. E. G. Bessonov, M. V. Gorbunkov, and A. A. Mikhailichenko, Phys. Rev. ST Accel. Beams 11, 011302 (2008).
  12. H. Deng and C. Feng, Phys. Rev. Lett. 111, 084801 (2013).
  13. I. V. Bandurkin, S. V. Kuzikov, and A. V. Savilov, Appl. Phys. Lett. 105, 073503 (2014).
  14. N. S. Ginzburg and N. Yu. Peskov, Phys. Rev. ST Accel. Beams 16, 090701 (2013).
  15. C. Nielsen and A. Sessler, Rev. Sci. Instrum. 30, 80 (1959).
  16. A. A. Kolomensky and A. N. Lebedev, Atom Energy 7, 549 (1959).
  17. A. V. Gaponov, M. I. Petelin, and V. K. Yulpatov, Radiophys. Quantum Electron. 10, 686 (1967).
  18. V. L. Bratman, Tech. Phys. 46, 2030 (1976).
  19. A. Bondeson and T. M. Antonsen, Jr., Int. J. Electron. 61, 855 (1986).
  20. H. Li and T. M. Antonsen, Jr.,, Phys. Plasmas 1, 714 (1994).
  21. V. L. Bratman and A. V. Savilov, Phys. Plasmas 2, 557 (1995).
  22. A. V. Savilov, Phys. Plasmas 4, 2276 (1997).
  23. V. L. Bratman, O. Dumbrajs, P. Nikkola, and A. V. Savilov, IEEE Trans. Plasma Sci. 28, 633 (2000).
  24. V. L. Bratman, A. E. Fedotov, and A. V. Savilov, Int. J. Infrared Millim. Waves 19, 939 (1998).
  25. H. Jory, R&D Technology Report No. ECOM-01873-F (Varian Associates, Paolo Alto, CA, 1968). See National Technical Information Service Document No. AD675509 (H. Jory, Investigation of Electronic Interaction with Optical Resonators for Microwave Generation and Amplification). Copies may be ordered from the National Technical Information Service, Springfield, VA 22161.
  26. V. L. Bratman, A. E. Fedotov, Y. K. Kalynov, V. N. Manuilov, M. M. Ofitserov, S. V. Samsonov, and A. V. Savilov, IEEE Trans. Plasma Sci. 27, 456 (1999).
  27. M. I. Petelin, Radiophys. Quantum Electron. 17, 686 (1974).
  28. V. L. Bratman, N. S. Ginzburg, and M. I. Petelin, Opt. Commun. 30, 409 (1979).
  29. V. L. Bratman, N. S. Ginzburg, G. S. Nusinovich, M. I. Petelin, and P. S. Strelkov, Int. J. Electron. 51, 541 (1981).
  30. V. L. Bratman, G. G. Denisov, N. S. Ginzburg, and M. I. Petelin, IEEE J. Quantum Electron. 19, 282 (1983).
  31. A. V. Savilov, Phys. Rev. E 64, 066501 (2001).
  32. N. S. Ginzburg, I. V. Zotova, and A. S. Sergeev, JETP Lett. 60, 513 (1994).
  33. N. S. Ginzburg, A. S. Sergeev, I. V. Konoplev, I. V. Zotova, A. D. R. Phelps, A. W. Cross, S. Cook, P. Aitken, V. G. Shpak, M. I. Yalandin, and S. A Shunailov, Phys. Rev. Lett. 78, 2365 (1997).
  34. R. D. Richtmyer, Principles of Advanced Mathematical Physics (Springer-Verlag, Berlin, 1978), Vol. 1.

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation