Literature DB >> 28751796

Calculations of Electron Inelastic Mean Free Paths. XI. Data for Liquid Water for Energies from 50 eV to 30 keV.

H Shinotsuka1, B Da1, S Tanuma1, H Yoshikawa1, C J Powell2, D R Penn2.   

Abstract

We calculated electron inelastic mean free paths (IMFPs) for liquid water from its optical energy-loss function (ELF) for electron energies from 50 eV to 30 keV. These calculations were made with the relativistic full Penn algorithm (FPA) that has been used for previous IMFP and electron stopping-power calculations for many elemental solids. We also calculated IMFPs of water with three additional algorithms: the relativistic single-pole approximation (SPA), the relativistic simplified SPA, and the relativistic extended Mermin method. These calculations were made using the same optical ELF in order to assess any differences of the IMFPs arising from choice of the algorithm. We found good agreement among the IMFPs from the four algorithms for energies over 300 eV. For energies less than 100 eV, however, large differences became apparent. IMFPs from the relativistic TPP-2M equation for predicting IMFPs were in good agreement with IMFPs from the four algorithms for energies between 300 eV and 30 keV but there was poorer agreement for lower energies. We calculated values of the static structure factor as a function of momentum transfer from the FPA. The resulting values were in good agreement with results from first-principles calculations and with inelastic X-ray scattering spectroscopy experiments. We made comparisons of our IMFPs with earlier calculations from authors who had used different algorithms and different ELF data sets. IMFP differences could then be analyzed in terms of the algorithms and the data sets. Finally, we compared our IMFPs with measurements of IMFPs and of a related quantity, the effective attenuation length (EAL). There were large variations in the measured IMFPs and EALs (as well as their dependence on electron energy). Further measurements are therefore required to establish consistent data sets and for more detailed comparisons with calculated IMFPs.

Entities:  

Keywords:  EAL; IMFP; effective attenuation length; electron inelastic mean free path; liquid water; relativistic TPP-2M; relativistic full Penn algorithm; static structure factor

Year:  2017        PMID: 28751796      PMCID: PMC5524379          DOI: 10.1002/sia.6123

Source DB:  PubMed          Journal:  Surf Interface Anal        ISSN: 0142-2421            Impact factor:   1.607


  18 in total

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5.  Momentum-Dependent Lifetime Broadening of Electron Energy Loss Spectra: A Self-Consistent Coupled-Plasmon Model.

Authors:  J D Bourke; C T Chantler
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Journal:  Radiat Res       Date:  2007-01       Impact factor: 2.841

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8.  Electron mean-free-path calculations using a model dielectric function.

Authors: 
Journal:  Phys Rev B Condens Matter       Date:  1987-01-15

9.  Extended Mermin method for calculating the electron inelastic mean free path.

Authors:  B Da; H Shinotsuka; H Yoshikawa; Z J Ding; S Tanuma
Journal:  Phys Rev Lett       Date:  2014-08-07       Impact factor: 9.161

10.  Electron energy-loss distributions in solid, dry DNA.

Authors:  J A LaVerne; S M Pimblott
Journal:  Radiat Res       Date:  1995-02       Impact factor: 2.841

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4.  Calculations of electron inelastic mean free paths. XII. Data for 42 inorganic compounds over the 50 eV to 200 keV range with the full Penn algorithm.

Authors:  Hiroshi Shinotsuka; Shigeo Tanuma; Cedric J Powell; Dave R Penn
Journal:  Surf Interface Anal       Date:  2018       Impact factor: 1.607

5.  Future directions on low-energy radiation dosimetry.

Authors:  G Massillon-Jl
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Review 7.  Photoionization of the aqueous phase: clusters, droplets and liquid jets.

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8.  Relaxation Dynamics and Genuine Properties of the Solvated Electron in Neutral Water Clusters.

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9.  Electron Inelastic Mean Free Paths for LiF, CaF2, Al2O3, and Liquid Water from 433 keV down to the Energy Gap.

Authors:  Miguel Angel Flores-Mancera; John S Villarrubia; Guerda Massillon-Jl
Journal:  ACS Omega       Date:  2020-02-17
  9 in total

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