DocumentCode
3357403
Title
Mobilities and diffusion parameters of Xe+ ions in Xe-Ne mixtures
Author
Barata, J.A.S. ; Conde, C.A.N.
Author_Institution
Dept. de Fis., Univ. da Beira Interior, Covilha, Portugal
fYear
2011
fDate
23-29 Oct. 2011
Firstpage
1795
Lastpage
1798
Abstract
Monte Carlo simulations are preformed to calculate ion transport parameters. Results are presented for the calculated reduced mobilities, K0, and longitudinal, DL, and transverse, DT, diffusion coefficients, for Xe+ ions in gaseous Xe-Ne mixtures, at atmospheric pressures, for Ne concentrations between 1 and 10%, and reduced electric field strengths, E/N, from about 5 to 500 Td, corresponding to values of E/p, from about 1.66 to 166 V cm-1 Torr-1 at 293 K. Reduced mobility, K0, peaks at about 50 Td with values of about 0.50 cm2V-1s-1 and increases slightly with the Ne concentration. The diffusion coefficients remain approximately constant and equal to 0.013 or 0.014 cm2s-1 for E/p values up to about 100 Td. The Monte Carlo simulations use a set of integral and differential elastic collision cross sections for Xe+ ions with neutral Xe and Ne atoms. Integral and differential elastic collision cross-sections for Xe+ ions with neutral Ne atoms are also calculated, and reported for center-of-mass energies in the 1 meV to 10 eV range, using a Tang and Toennies ion-atom interaction potential model to describe ab initio spectroscopic data for the Xe+-Ne molecular ion, and the phase shifts are calculated by the JWKB approximation.
Keywords
Monte Carlo methods; WKB calculations; ab initio calculations; atom-ion collisions; diffusion; electron multiplier detectors; gas mixtures; ion mobility; neon; positive ions; proportional counters; xenon; JWKB approximation; Monte Carlo simulations; Xe-Ne; Xe+; Xe+ ion diffusion parameters; Xe+ ion mobility; Xe+-Ne molecular ion; ab initio spectroscopic data; atmospheric pressure gaseous Xe-Ne mixtures; differential elastic collision cross sections; integral elastic collision cross sections; ion transport parameters; ion-atom interaction potential model; longitudinal diffusion coefficient; neutral Ne atoms; neutral Xe atoms; phase shifts; reduced electric field strength; reduced mobility; transverse diffusion coefficient; Approximation methods; Xenon;
fLanguage
English
Publisher
ieee
Conference_Titel
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2011 IEEE
Conference_Location
Valencia
ISSN
1082-3654
Print_ISBN
978-1-4673-0118-3
Type
conf
DOI
10.1109/NSSMIC.2011.6154685
Filename
6154685
Link To Document