Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films

Ion-surface collision studies are carried out with small deuterated hydrocarbon cations i.e. CDx + with x = 2-4 colliding with fusion relevant Beryllium (Be) thin films with ions incident energy as low as 0 eV and as high as Ein = 100 eV. Be films are coated on stainless steel surface by the techniq...

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Main Authors: Bilal Rasul, Aroog g
Format: Article
Language:English
Published: Mehran University of Engineering and Technology 2021-07-01
Series:Mehran University Research Journal of Engineering and Technology
Online Access:https://publications.muet.edu.pk/index.php/muetrj/article/view/2169
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spelling doaj-9c08942bb752431a9af7c62f155f7f532021-07-10T18:10:53ZengMehran University of Engineering and TechnologyMehran University Research Journal of Engineering and Technology0254-78212413-72192021-07-0140353954410.22581/muet1982.2103.082169Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin FilmsBilal Rasul0Aroog g1Department of Physics, University of Sargodha, Sargodha, Pakistan.Department of Physics, University of Sargodha, Sargodha, Pakistan.Ion-surface collision studies are carried out with small deuterated hydrocarbon cations i.e. CDx + with x = 2-4 colliding with fusion relevant Beryllium (Be) thin films with ions incident energy as low as 0 eV and as high as Ein = 100 eV. Be films are coated on stainless steel surface by the technique of Thermionic Vacuum Arc (TVA); a novel thin film deposition method with primary as well distinguished characteristic of control of ion flux and respective dose towards the substrate. Prior to scattering, methane-d4 99 atom % D is ionized by electron impact and ions are mass and energy analyzed. Ionization and collisions are performed in ultra high vacuum conditions. In these kinds of collision experiments, we have recorded secondary ion mass spectra and plotted respective incident energy resolved abundances of secondary product ions. Relative abundances in percentage of total secondary ions are plotted and it is observed that such beryllium films can accumulate charged hydrocarbon layers as surface adsorbates. These self assembled layers play a primary role in surface-scattering of primary ions. Moreover, it is seen that bond dissociation energy in lighter hydrocarbons is higher than that for heavier species and shows primarily that the deuterium atoms are loosely bounded to carbon atoms in heavier hydrocarbons than in lighter ones.https://publications.muet.edu.pk/index.php/muetrj/article/view/2169
collection DOAJ
language English
format Article
sources DOAJ
author Bilal Rasul
Aroog g
spellingShingle Bilal Rasul
Aroog g
Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films
Mehran University Research Journal of Engineering and Technology
author_facet Bilal Rasul
Aroog g
author_sort Bilal Rasul
title Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films
title_short Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films
title_full Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films
title_fullStr Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films
title_full_unstemmed Interaction of Small Hydrocarbons with Fusion Relevant Beryllium Thin Films
title_sort interaction of small hydrocarbons with fusion relevant beryllium thin films
publisher Mehran University of Engineering and Technology
series Mehran University Research Journal of Engineering and Technology
issn 0254-7821
2413-7219
publishDate 2021-07-01
description Ion-surface collision studies are carried out with small deuterated hydrocarbon cations i.e. CDx + with x = 2-4 colliding with fusion relevant Beryllium (Be) thin films with ions incident energy as low as 0 eV and as high as Ein = 100 eV. Be films are coated on stainless steel surface by the technique of Thermionic Vacuum Arc (TVA); a novel thin film deposition method with primary as well distinguished characteristic of control of ion flux and respective dose towards the substrate. Prior to scattering, methane-d4 99 atom % D is ionized by electron impact and ions are mass and energy analyzed. Ionization and collisions are performed in ultra high vacuum conditions. In these kinds of collision experiments, we have recorded secondary ion mass spectra and plotted respective incident energy resolved abundances of secondary product ions. Relative abundances in percentage of total secondary ions are plotted and it is observed that such beryllium films can accumulate charged hydrocarbon layers as surface adsorbates. These self assembled layers play a primary role in surface-scattering of primary ions. Moreover, it is seen that bond dissociation energy in lighter hydrocarbons is higher than that for heavier species and shows primarily that the deuterium atoms are loosely bounded to carbon atoms in heavier hydrocarbons than in lighter ones.
url https://publications.muet.edu.pk/index.php/muetrj/article/view/2169
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