K-SHELL IONIZATION CROSS SECTIONS OF ALKALI METALS BY ELECTRON IMPACTS
Keywords:
Ionization Cross Section, Atoms, Electron Impact, K-ShellAbstract
The theoretical modified Khare model et al. [1-2], has been used to calculate the total cross sections for K-shell ionization of 3 targets (Na, K, Rb ) due to electron impact at incident electron energy from ionization threshold to 1 GeV. The various calculated cross sections are in remarkable agreement with available experimental data and other theoretical cross sections.
References
Khare S.P., Sharma M.K. and Tomar S. 1999. J. Phys. B At. Mol. Opt. Phys. 32, 3147
Y. Kumar, N. Tiwari, M. Kumar and S. Tomar, J. At. Mol. Sci. (2012)122.
Duetsch H, Becker K and Mark T D 1998 Int. J Mass Spectrom. 177, 47
Khare S P and Wadehra J M1996 Can Phys, 74, 376
Khare S P, Saksena V and Wadehra J M 1993 Phys. Rev. A 48,1209
Khare S P and Wadehra J M, 1995 Phys. Lett. A, 198 212
Scofield J H 1978 Phys Rev A, 18, 963.
Hombourger C 1998 J. Phys. B:At. Mol. Opt. Phys. 31,411
Bell K L, Gilbody H B, Hudhes J G, Kingston A E and Smith F J, 1983 Phys Chem Ref Data, 12, 891.
Casnati Etartari A and Baraldi C 1982 J.Phys.B At. Mol. Phys.15,155
Kim Y.K., Santos J P and Parente F, 2000 Phys. Rev A 62 052710.
Kim Y.K. and Rudd M.E., 1994Phys. Rev A50. 3954.
Santos J P, Parente F and Kim Y K 2003 J. Phys. B At. Mol. Opt. Phys. 36, 4211
Haque A K F, Uddin M A, Basak A K, Karim K R, Saha B C and Malik F B 2006Phys Rev A, 73, 012708.
Uddin M A, Haque A K F, Karim K R, Basak A K and Malik F B 2006Eur Phys J D, 37, 361.
Patoary M A R, Uddin M A, Haque A K F, Basak A K, Talukder M R, Karim K R and Saha B C 2007 Int. J. Quantum Chem. 108, 1023
Huo W M 2001Phys. Rev A, 64, 042719.
Talukder M R Bose S and Taka mura S, 2008 Int. J M S, 269, 118.
Saksena V., Kushwaha M.S. and Khare S.P., Physica B233 (1997) 201.
Jolly W L, Bomben K D and Eyermann C J 1984 At. Data Nucl. Data Tables 31,411
Desclaux J P At Nucl Data tables 1973, XII, 325.
Tawara H, Harrison K G and de Heer F J 1973 Physica 63,351
Rester D S and Dance W E 1966 Phys Rev, 152, 1.
Davis D V, Mistry V D and Quarles C A 1972 Phys Lett A, 38, 169.
Middleman L M, Ford R L and Hofstater R 1970 Phys Rev A, 2, 1429.
Berkner K H, Kaplan S N and Pyle R V 1970 Bull Am Phys Soc, 15, 786.
Hoffmann D H H, Brendel C, Genz H, Low W and Muller S 1979 Z. Phys. A 293, 187
Ishii K, Kamiya M, Sera K, Morita S, Tawara H, Oyamada M and Chu T C Phys Rev A 1977, 15, 906.
Isaacson M 1972 J.Chem.Phys. 56,1813
Hink W and Ziegler A1969 Z Phys. A 216, 222
Egerton R. F. 1975 Phil. Mag. 31, 199.
Glupe G and Mehlhorn W 1971 J Phys. C 4,40
Platten H, Schiwietz G and Notle G 1985 Phys. Rev.Lett. A 107, 89
McDonald S C and Spice B M 1988 Phys. Rev. A 37, 985
Kamiya M, Kuwako A, Ishii K, Morita S and Oyamada M 1980 Phys. Rev. A 22,413
Luo Z M, An Z, He F, Li T Wang L M and XiaX Y 1997 J. Phys.B At. Mol. Opt. Phys 230,2681
Llovet X, Merlet C and Savlat F 2002 J. Phys.B At. Mol. Opt. Phys 35, 973
Scholz W, Li Scholz A, Colle R and Preiss I L1972 Phys. Lett. 29, 761
He F Q, Long X G, Peng X F, Luo Z M and An Z 1996 Acta Phys. Sin.5,499
Berenyi D, Hock G, Ricz S, Schlenk B and Valek A 1978 J Phys B, 11, 709.
Kiss K, Kalman G, Palinkas J and Schlenk B 1981 Acta Phys. Hung. 50, 87
Shima K1980 Phys. Lett.A 77,237
Shevelko V P, Solomon A M Vukstick V S Phys,Scripta 43 (1991) 158.
Schlenk B, Berenyi D, Ricz S, Valek A and Hock G. 1976 Acta Phys Hung, 41, 159.
Pawan Kumar, Dr A.K Ahuja, EPR of Vanadyl Doped RbMgCl3. 6H2O. International Journal of Electrical Engineering and Technology, 3(3), 2012, pp. 241–244.
Pawan Kumar, Dr A.K Ahuja, EPR and Linewidth of Vanadyl Doped RBMGCL3. 6H2O. International Journal of Advanced Research in Engineering and Technology, 2(1), 2011, pp. 29–33.
Downloads
Published
Issue
Section
License
Copyright (c) 2013 Sachin Kumar, Yogesh Kumar (Author)

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.