Searching for just a few words should be enough to get started. If you need to make more complex queries, use the tips below to guide you.
Article type: Research Article
Authors: Halder, S.a | Samaddar, S.a | Purkait, K.a | Mondal, A.b | Mandal, C.R.a | Purkait, M.a; *
Affiliations: [a] Department of Physics, Ramakrishna Mission Residential College, Narendrapur, Kolkata-700103, India | [b] Department of Physics, Ramsaday College, Amta, Howrah, India
Correspondence: [*] Corresponding author: M. Purkait, Department of Physics, Ramakrishna Mission Residential College, Narendrapur, Kolkata, India. PACS number: 34.70.+e; E-mail: mpurkait_2007@rediffmail.comorrkmcnpur@vsnl.com.
Abstract: A four-body formalism of the modified target continuum distorted wave (MTCDW-4B) with incorrect boundary conditions and boundary corrected continuum intermediate state (BCCIS-4B) approximation have been employed to calculate the differential cross sections (DCS) and total cross sections (TCS) for double-electron capture (DC) in collision of fast bare ions with helium atoms in their ground states. In both these formalisms, the intermediate continuum state of each of the active electrons with the target has been taken into account. The influence of the static-electron-correlations on cross sections has also been taken into account by choosing the proper wave functions of the initial states of the bound electrons. Moreover, we have computed the cross sections using the asymptotic Coulomb logarithmic phase for the relative motion of two colliding nuclei in BCCIS-4B theory. The present computed results are compared with the available experimental and other existing theoretical results. TCS are found to be in good agreement with the measurements. In addition, we have also analyzed DCS for DC in the collision of α-particles with helium atoms at intermediate and high projectile energies. We have investigated the significance of the contributions to TCS and DCS from excited states (both single and double) of He and 𝐿𝑖+ especially in comparison between theories and measurements. For symmetric collision, the ground state capture dominates over the excited states whereas for asymmetric collision, the excited states including singly and doubly excited states dominate over the ground state capture. It is also clear that the ground state contribution dominates at very high impact energies for asymmetric collision. The obtained results for DCS into the ground state and excited states are compared with the experimental data and overall satisfactory agreements have been found at different impact energies.
Keywords: Lon-atom collision, electron capture, cross sections
DOI: 10.3233/JCM-190030
Journal: Journal of Computational Methods in Sciences and Engineering, vol. 20, no. 2, pp. 665-686, 2020
IOS Press, Inc.
6751 Tepper Drive
Clifton, VA 20124
USA
Tel: +1 703 830 6300
Fax: +1 703 830 2300
sales@iospress.com
For editorial issues, like the status of your submitted paper or proposals, write to editorial@iospress.nl
IOS Press
Nieuwe Hemweg 6B
1013 BG Amsterdam
The Netherlands
Tel: +31 20 688 3355
Fax: +31 20 687 0091
info@iospress.nl
For editorial issues, permissions, book requests, submissions and proceedings, contact the Amsterdam office info@iospress.nl
Inspirees International (China Office)
Ciyunsi Beili 207(CapitaLand), Bld 1, 7-901
100025, Beijing
China
Free service line: 400 661 8717
Fax: +86 10 8446 7947
china@iospress.cn
For editorial issues, like the status of your submitted paper or proposals, write to editorial@iospress.nl
如果您在出版方面需要帮助或有任何建, 件至: editorial@iospress.nl