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Numerical modeling of the electrical breakdown and discharge properties of laser-generated plasma channels

Tz. B. Petrova, H. D. Ladouceur*, and A. P. Baronavski

  • Molecular Dynamics Section, Chemistry Division, Naval Research Laboratory, 4555 Overlook Avenue, Washington, DC 20375, USA

  • *Corresponding author; harold.ladouceur@nrl.navy.mil

Phys. Rev. E 76, 066405 – Published 21 December, 2007

DOI: https://doi.org/10.1103/PhysRevE.76.066405

Abstract

An extensive nonequilibrium steady-state kinetics model incorporating collisional and radiative processes is developed to study the electrical breakdown and discharge maintenance of laser-induced atmospheric plasma channels formed in externally applied electric fields. The model is based upon a self-consistent numerical solution of the Boltzmann equation for the electron energy distribution function coupled with the electron energy balance equation and the population balance equations for electrons and air species. Using the electron energy distribution function, the ionization and electron attachment rates as a function of the reduced applied electric field at different degrees of ionization are calculated. We find that the ionization rate as a function of applied electric field in a laser-induced plasma channel is orders of magnitude larger than that obtained for a natural atmospheric air discharge. Therefore, the electrical breakdown of these plasma channels may occur at significantly lower applied electric fields. The present model predicts a breakdown electric field of 10kVcm, while the experimentally determined breakdown field strength is 5.7kVcm [A. P. Baronavski et al., NRL Memorandum Report No. NRL/MR/6110–02-8642, 2002 (unpublished)], a reduction of about a factor of 5 from the natural Paschen electrical breakdown field of 30kVcm.

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References (72)

  1. A. Braun, G. Korn, X. Liu, D. Du, J. Squier, and G. Mourou, Opt. Lett. 20, 73 (1995).
  2. X. M. Zhao, J.-C. Diels, C. Y. Wang, and J. M. Elizondo, IEEE J. Quantum Electron. 31, 599 (1995).
  3. M. Miki and A. Wada, J. Appl. Phys. 80, 3208 (1996).
  4. B. La Fontaine, F. Vidal, Z. Jiang, C. Y. Chien, D. Comtois, A. Desparois, T. W. Johnston, J. C. Kieffer, H. Pepin, and H. P. Mercure, Phys. Plasmas 6, 1615 (1999).
  5. H. Schillinger and R. Sauerbrey, Appl. Phys. B: Lasers Opt. 68, 753 (1999).
  6. F. Vidal, D. Comtois, C. Y. Chien, A. Desparois, B. La Fontaine, T. W. Johnston, J. C. Kieffer, H. P. Mercure, H. Pepin, and F. A. Rizk, IEEE Trans. Plasma Sci. 28, 418 (2000).
  7. S. Tzortzakis, B. Prade, M. Franco, and A. Mysyrowicz, Opt. Commun. 181, 123 (2000).
  8. H. D. Ladouceur, A. P. Baronavski, D. Lohrmann, P. W. Grounds, and P. G. Girardi, Opt. Commun. 189, 107 (2001).
  9. J. Kasparian, M. Rodriguez, G. Mejean, J. Yu, E. Salmon, H. Wille, R. Bourayou, S. Frey, Y. B. Andre, A. Mysyrowicz, R. Sauerbrey, J. P. Wolf, and L. Woste, Science 301, 61 (2003).
  10. S. L. Chin, S. A. Hosseini, W. Liu, Q. Luo, F. Théberge, N. Aközbek, A. Becker, V. P. Kandidov, O. G. Kosareva, and H. Schroeder, Can. J. Phys. 83, 863 (2005).
  11. A. Couairon and A. Mysyrowicz, Phys. Rep. 441, 47 (2007).
  12. M. Rodriguez, R. Sauerbrey, H. Wille, L. Woste, T. Fujii, Y. B. Andre, A. Mysyrowicz, L. Klingbeil, K. Rethmeier, W. Kalkner, J. Kasparian, E. Salmon, J. Yu, and J. P. Wolf, Opt. Lett. 27, 772 (2002).
  13. A. P. Baronavski, H. D. Ladouceur, and P. G. Girardi, Experimental Observations of Electrical Arc discharges along Laser Plasma Channels, NRL/MR/6110–02-8642, 2002 (unpublished).
  14. D. F. Gordon, A. Ting, R. F. Hubbard, E. Briscoe, C. Manka, A. P. Baronavski, H. D. Ladouceur, P. W. Grounds, and P. G. Girardi, Phys. Plasmas 10, 4530 (2003).
  15. Tz. Petrova, H. D. Ladouceur, and A. P. Baronavski, Rodriguez et al.Proceedings in 58th Gaseous Electronic Conference, San Jose, 2005 (unpublished), p. 18. We have obtained a breakdown electric field of 5.7kVcm1 using a linear regression to fit the voltage measurements vs distance by [12].
  16. H. D. Ladouceur, A. P. Baronavski, P. G. Girardi, and C. A. Sullivan, Electric Field Scaling and Charge Delivery via Laser-Induced Laser Plasma Channels, NRL/MR/6110–05-8914, 2005 (unpublished).
  17. M. Yamaura, Appl. Phys. Lett. 88, 251501 (2006).
  18. P. B. Corkum, C. Rolland, and T. Rao, Phys. Rev. Lett. 57, 2268 (1986).
  19. Teramobile online: http://www.teramobile.org
  20. M. Raizen, C. Salmon, and Q. Niu, Phys. Today 54(8), 17 (2001).
  21. P. Rairoux, H. Schillinger, S. Niedermeier, M. Rodrigues, F. Ronneberger, R. Sauerbrey, B. Stein, D. Waite, C. Wedekind, H. Wille, L. Wöste, and C. Ziener, Appl. Phys. B: Lasers Opt. 71, 573 (2000).
  22. N. A. Popov, Plasma Phys. Rep. 29, 695 (2003).
  23. I. P. Shkarofsky, T. W. Johnston, and M. P. Bachynski, The Particle Kinetics in Plasma (Addison-Wesley, Reading, MA, 1966), Chaps. 2–5.
  24. S. Yoshida, A. V. Phelps, and L. C. Pitchford, Phys. Rev. A 27, 2858 (1983).
  25. R. Winkler, M. Capitelli, M. Dilonardo, C. Gorse, and J. Wilhelm, Plasma Chem. Plasma Process. 6, 437 (1986).
  26. Ts. Petrova, E. Benova, G. Petrov, and I. Zhelyazkov, Phys. Rev. E 60, 875 (1999).
  27. This data has been developed over many years by A. V. Phelps, and coworkers at JILA: http://jilawww.colorado.edu/www/research/colldata.html
  28. J. Dutton, J. Phys. Chem. Ref. Data 4, 577 (1975).
  29. D. K. Gupta, S. Mahajan, and P. I. John, J. Phys. D 33, 681 (2000).
  30. J. J. Lowke, J. Phys. D 25, 202 (1992).
  31. K. Feser and R. C. Hughes, Electra 117, 23 (1988).
  32. S. Tzortzakis, B. Prade, M. Franco, A. Mysyrowicz, S. Huller, and P. Mora, Phys. Rev. E 64, 057401 (2001).
  33. R. S. Sigmund, J. Appl. Phys. 56, 1355 (1984).
  34. Y. Itikawa, J. Phys. Chem. Ref. Data 35, 31 (2006).
  35. L. C. Pitchford and A. V. Phelps, Phys. Rev. A 25, 540 (1982).
  36. R. D. Hake, Jr. and A. V. Phelps, Phys. Rev. 158, 70 (1967).
  37. M. Capitelli, C. M. Ferreira, B. F. Gordiets, and A. I. Osipov, Plasma Kinetics in Atmospheric Gases (Springer-Verlag, Berlin, 2000), Chap. 8.
  38. H. Myers, J. Phys. B 2, 393 (1969).
  39. D. E. Shemansky and A. L. Broadfood, J. Quant. Spectrosc. Radiat. Transf. 11, 1401 (1971).
  40. E. Brook, M. F. A. Harrison, and A. C. H. Smith, J. Phys. B 11, 3115 (1978).
  41. H. W. Drawin, Z. Phys. 225, 470 (1969).
  42. E. W. McDaniel, Collisional Phenomena in Ionized Gases (Wiley, New York, 1964), Chap. 8.
  43. P. D. Burrow, J. Chem. Phys. 59, 4922 (1973).
  44. M. Jinno, M. Kubo, M. Aono, and R. Itatani, Jpn. J. Appl. Phys., Part 1 36, 2870 (1997).
  45. V. Guerra and J. Loureiro, Plasma Sources Sci. Technol. 6, 373 (1997); 6, 361 (1997).
  46. P. A. Sá and J. Loureiro, J. Phys. D 30, 2320 (1997).
  47. L. G. Piper, J. Chem. Phys. 91, 864 (1989).
  48. L. G. Piper, J. Chem. Phys. 88, 231 (1988); 88, 6911 (1988).
  49. L. G. Piper, J. Chem. Phys. 87, 1625 (1987).
  50. A. R. De Sousa, M. Touzeau, and M. Petididier, Chem. Phys. Lett. 121, 423 (1985).
  51. W. J. Marinelli, W. J. Kessler, B. D. Green, and W. A. M. Blumberg, J. Chem. Phys. 90, 2167 (1989).
  52. W. J. Marinelli, B. D. Green, M. A. DeFaccio, and W. A. M. Blumberg, J. Phys. Chem. 92, 3429 (1988).
  53. M. P. Iannuzzi, J. B. Jeffries, and F. Kaufman, Chem. Phys. Lett. 87, 570 (1982).
  54. V. V. Ivanov, K. S. Klopovsky, D. V. Lopaev, Y. A. Mankelevich, A. T. Rakhimov, and T. V. Rakhimova, IEEE Trans. Plasma Sci. 31, 528 (2003).
  55. J. T. Gudmundsson, I. G. Kouznetsov, K. K. Patel, and M. A. Liberman, J. Phys. D 34, 1100 (2001).
  56. B. Gordiets, C. M. Ferreira, V. Guerra, J. Loureiro, J. Nahorny, D. Pagnon, M. Touzeau, and M. Vialle, IEEE Trans. Plasma Sci. 23, 750 (1995).
  57. V. A. Feoktistov, A. V. Mukhovatova, A. M. Popov, and T. V. Rakhimova, J. Phys. D 28, 1346 (1995).
  58. I. A. Kossyi, A. Yu. Kostinski, A. A. Matveyev, and V. P. Silakov, Plasma Sources Sci. Technol. 1, 207 (1992).
  59. V. Guerra and J. Loureiro, Plasma Sources Sci. Technol. 8, 110 (1999).
  60. H. Partridge, S. R. Langhoff, C. W. Bauschlicher, and D. W. Schwenke, J. Chem. Phys. 88, 3174 (1988).
  61. B. Gordiets, C. M. Ferreira, J. Nahorny, D. Pagnon, M. Touzeau, and M. Vialle, J. Phys. D 29, 1021 (1996).
  62. J. A. Guthrie, R. C. Chaney, and A. J. Cunningham, J. Chem. Phys. 95, 930 (1991).
  63. J. Zinn, C. D. Sutherland, S. N. Stone, L. M. Duncan, and R. Behnke, J. Atmos. Terr. Phys. 44, 1143 (1982).
  64. E. W. McDaniel, V. Cermak, A. Dalgarno, E. G. Ferguson, and L. Friedman, Ion-Molecule Reactions (Wiley, New York, 1970).
  65. F. E. Niels, J. Chem. Phys. 52, 408 (1970).
  66. D. Hayashi and K. Kadota, J. Appl. Phys. 83, 697 (1998).
  67. L. M. Chanin, A. V. Phelps, and M. A. Biondi, Phys. Rev. Lett. 2, 344 (1959).
  68. L. M. Chanin, A. V. Phelps, and M. A. Biondi, Phys. Rev. 128, 219 (1962).
  69. B. L. Upschulte, W. J. Marinelli, and B. D. Green, J. Phys. Chem. 98, 837 (1994).
  70. J. I. Steinfeld, S. M. Adlergolden, and J. W. Gallagher, J. Phys. Chem. Ref. Data 16, 911 (1987).
  71. Y. Ichikawa, R. L. C. Wu, and T. Kaneda, J. Appl. Phys. 67, 108 (1990).
  72. F. C. Fehsenfeld, A. L. Schmeltekopf, H. I. Schiff, and E. E. Ferguson, Planet. Space Sci. 15, 373 (1967).

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