COMPUTER-SIMULATION OF CHARGE RECOMBINATION IN MODEL TRACKS OF HIGH-ENERGY ELECTRONS IN NONPOLAR LIQUIDS - KINETICS AND ESCAPE

Citation
Wm. Bartczak et A. Hummel, COMPUTER-SIMULATION OF CHARGE RECOMBINATION IN MODEL TRACKS OF HIGH-ENERGY ELECTRONS IN NONPOLAR LIQUIDS - KINETICS AND ESCAPE, Radiation physics and chemistry, 49(6), 1997, pp. 675-687
Citations number
25
Categorie Soggetti
Nuclear Sciences & Tecnology","Chemistry Physical","Physics, Atomic, Molecular & Chemical
ISSN journal
0969806X
Volume
49
Issue
6
Year of publication
1997
Pages
675 - 687
Database
ISI
SICI code
0969-806X(1997)49:6<675:COCRIM>2.0.ZU;2-X
Abstract
The evolution in time of the recombination of ions in model tracks and spurs produced by high-energy electrons was calculated by computer si mulation of the diffusion and drift of the ions in each other's Coulom b field. Tracks of high-energy electrons are subdivided into tracks of secondary electrons that can be considered as independent one from an other. Energy losses smaller than 50 or 100 keV are assumed to give ri se to correlated groups of charges. The diffusion and recombination in the groups is directly simulated. For electrons with an initial energ y in excess of 50 or 100 keV calculations are performed by summing the contributions of energy losses below this value. The nonhomogeneous k inetics of the charge recombination has been studied for both the shor t-time and long-time domains. The survival probability as a function o f time, W(t), has been calculated for the charged species in electron tracks with different initial energy of the electron, for gaussian and exponential distributions of the initial distance between the positiv e and the negative species. The behaviour of W(t) and comparisons with the available short-time experimental data do not provide any clear d istinction between the two distributions. The behaviour of W(t) at lon g times was also investigated in detail. The region of applicability o f the theoretical limiting behaviour t(-0.5) was checked and found to be very small. The experimentally observed behaviour t(-0.6) was criti cally examined. Results are obtained for the probability of ion escape from recombination in the track as a function of the initial energy o f the electron. The experimentally observed decrease of the yield of e scape with decreasing energy of the electron for two liquids is adequa tely explained. (C) 1997 Elsevier Science Ltd.