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Charged particle propagation through nanostructures and associated radiation

NUCLEAR, HEAVY ION AND ATOMIC PHYSICS

Charged particle propagation through nanostructures and associated radiation

N.K. ZHEVAGO
V. I. GLEBOV
Nuclear Science and TechniquesVol.15, No.2pp.65-85Published in print 01 Apr 2004
19800

In this report, using computer simulations, we investigate the channeling of high-energy charged particles in nanotube ropes and fullerites and estimate the capability of bent nanocrystals to deflect a particle beam. We also discuss electromagnetic radiation arising both from the non-uniform motion of the particles in the electrostatic potential of aligned atoms and from the transient polarization of the medium caused by the particles.

Relativistic electron and positron beamsNanocrystalline materialsFullerenesNanotubesChannelingX-ray and gamma radiation
References
[1] Dresselhaus M S, Dresselhaus G, Eklund P C. Science of fullerens and carbon nanotubes, Academic, San Diego, 1996
[2] Tomanek D, Enbody R J. Science and application of nanotubes, Kluwer Academic/Plenum Publishers, New York, 2000
[3] Treacy M M J, Ebbesen T W, Gibson J M. Nature, 1996, 381: 678
[4] Fischer J E, Dai H, Thess A et al. Phys Rev, 1997, B55: R4921
[5] Bethune D S, Kiang C H, de Vries M S et al. Nature, 1993, 363: 605S
[6] Iijima S. Nature, 1991, 354: 56
[7] Thess A, Lee R, Nikolaev P et al. Science, 1996, 273: 483
[8] Tans S J, Devoret M H, Dai H et al. Nature, 1997, 386: 474
[9] Joachim C, Gimzewski J K. Chem Phys Lett, 1997, 265: 353
[10] Zhevago N K, Glebov V I. JETP, 2000, 91: 504
[11] Robinson M T, Oen O S. Phys Rev, 1963, 132: 2385
[12] Lutz H, Sizmann R. Phys Lett, 1963, 5: 113
[13] Lindhard J. Phys Lett, 1964, 12: 126
[14] Erginsoy C. Phys Rev Lett, 1965, 15: 360
[15] Doyle P A, Turner P S. Acta Cryst, 1968, A24: 390
[16] Wilson A J C. International tables for crystallography C, Kluwer Academic, Dordrecht, 1992
[17] Kroto H W, Heath J R, O′Brien S C et al. Nature, 1985, 318: 162
[18] Heiney P A, Fischer J E, McGhie A R et al. Phys Rev Lett, 1991, 66: 2911
[19] Blank V D, Buga S G, Serebryanaya N R et al. Phys Lett, 1996, A220: 149
[20] Blank V, Popov M, Pivovarov G et al. Diamond and Related Materials, 1998, 7: 427
[21] Talyzin A, Jansson U. J Phys Chem, 2000, 104: 5064
[22] Zhou O, Fischer J E, Cousel N et al. Nature, 1991, 351: 462
[23] Zhevago N K, Glebov V I. Phys Lett, 2001, A282: 97
[24] Zhevago N K, Glebov V I. JETP, 2002, 94: 1121
[25] Bazylev V A, Zhevago N K. Sov Phys Usp, 1982, 25: 578; Bazylev V A, Zhevago N K. Sov Phys Usp, 1990, 33: 1021
[26] Part H, Kephart Y O, Klein R K et al. Phys Rev, 1987, B35: 13
[27] Tsyganov E N. JETP Lett, 1977, 26: 279
[28] Zhevago N K, Glebov V I. Phys Lett, 2003, A310: 301
[29] Tsai Y S. Rev Mod Phys, 1974, 46: 815
[30] Berger R. Methods of computational physics, Academic, New York, 1963, 1, 135
[31] Zhevago N K, Glebov V I. JETP, 2000, 91: 504
[32] Bazylev V A, Zhevago N K. Sov Phys JETP, 1977, 46: 891; Bazylev V A, Zhevago N K. Phys Lett, 1979, B84: 182
[33] Ter-Mikhaelyan M L. High-energy electromagnetic processes in condenced media, Wiley-Interscience, New York, 1972
[34] Landau L D, Lifshitz E M. The classical theory of fields, Pergamon, Oxford, 1989
[35] Zhevago N K, Glebov V I. Phys Lett, 1998, A250: 360
[36] Zhevago N K, Khokonov M Kh. Sov Phys JETP, 1984, 60: 33
[37] Afanas’ev A M, Aginyan M A. Sov Phys JETP, 1978, 47: 300
[38] Vorobyev S A et al. JETP Lett, 1985, 41: 1
[39] Shchagin A V, Pristupa V I, Khizhnyak N A. Phys Lett, 1990, A148: 485
[40] Brenzinger K-H et al. Phys Rev Lett, 1997, 79: 2462
[41] Ter-Mikhaelyan M L. Usp Fiz Nauk (in Russian), 2001, 171: 597
[42] Aginian M A, Avakian R O, Ispirian K A et al.

in Electron-photon interaction in dense media

, NATO Science Series, Mathematics, Physics and Chemistry, 2002, 49: 183
Baidu ScholarGoogle Scholar
[43] Zhevago N K, Glebov V I. Phys Lett, 2003, A309: 311