We are experiencing issues opening hdl.handle.net links on ANU campus. If you are experiencing issues, please contact the repository team repository.admin@anu.edu.au for assistance.
 

Integral cross sections and transport properties for electron-mercury scattering over a wide energy range (0.001-1000 eV) and reduced electric field range (0.01-1000 Td)

Date

2023

Authors

McEachran, Robert
Boyle, G J
Machacek, Joshua

Journal Title

Journal ISSN

Volume Title

Publisher

Springer

Abstract

Abstract: We report calculations for electron-mercury scattering using a complex relativistic optical potential method. The energy range of this study is 0.001-1000 eV, with results for the elastic (and momentum-transfer) cross section, summed discrete electronic-state integral excitation cross sections and electron-impact ionization cross sections being presented. Here we obtain our cross sections from a single theoretical relativistic calculation. Since mercury is a heavy element, a relativistic treatment is very desirable. These ab initio calculations are compared to the cross section set recommended by Mirić et al. (Eur Phys J D 71:1, 2017), which were developed from a variety of experimental and theoretical sources. Significant differences are noted between the total excitation and ionization cross sections, and the low-energy momentum-transfer cross section. Electron transport coefficients are subsequently calculated for reduced electric fields ranging from 0.01 to 1000 Td, using a multiterm solution of Boltzmann's equation. The results were compared against those calculated with the Mirić et al. set, and experimental measurements where possible. Overall, there is good agreement demonstrated between both cross section sets and experiment. The drift and diffusion coefficients calculated with the ab initio cross section set were generally lower than those calculated with the Mirić et al. set, at low reduced field strengths E/ N< 2 Td, and vice versa for reduced fields strengths E/ N> 2 Td. The ionisation coefficient calculated here was smaller than that of Mirić et al. and the experimental measurements over the full range of electric fields investigated. Graphical Abstract: [Figure not available: see fulltext.].

Description

Keywords

Citation

Source

European Physical Journal D: Atomic, Molecular, Optical and Plasma Physics

Type

Journal article

Book Title

Entity type

Access Statement

License Rights

Restricted until

2099-12-31
Back to topicon-arrow-up-solid
 
APRU
IARU
 
edX
Group of Eight Member

Acknowledgement of Country

The Australian National University acknowledges, celebrates and pays our respects to the Ngunnawal and Ngambri people of the Canberra region and to all First Nations Australians on whose traditional lands we meet and work, and whose cultures are among the oldest continuing cultures in human history.


Contact ANUCopyrightDisclaimerPrivacyFreedom of Information

+61 2 6125 5111 The Australian National University, Canberra

TEQSA Provider ID: PRV12002 (Australian University) CRICOS Provider Code: 00120C ABN: 52 234 063 906