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Simulations of the fission-product stopping efficiency in IGISOL

Al-Adili, Ali (author)
Uppsala universitet,Tillämpad kärnfysik
Jansson, Kaj (author)
Uppsala universitet,Tillämpad kärnfysik
Mattias, Lantz (author)
Uppsala universitet,Tillämpad kärnfysik
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Solders, Andreas (author)
Uppsala universitet,Tillämpad kärnfysik
Gorelov, Dmitry (author)
Department of Physics, FI-40014 University of Jyväskylä, Finland
Gustavsson, Cecilia (author)
Uppsala universitet,Tillämpad kärnfysik
Mattera, Andrea (author)
Uppsala universitet,Tillämpad kärnfysik
Moore, Iain (author)
Uppsala universitet,Tillämpad kärnfysik
Prokofiev, Alexander (author)
Uppsala universitet,Tillämpad kärnfysik
Rakopoulos, Vasileios (author)
Uppsala universitet,Tillämpad kärnfysik
Penttilä, Heikki (author)
Department of Physics, FI-40014 University of Jyväskylä, Finland
Tarrío, Diego (author)
Uppsala universitet,Tillämpad kärnfysik
Wiberg, Sara (author)
Uppsala universitet,Tillämpad kärnfysik
Österlund, Michael (author)
Uppsala universitet,Tillämpad kärnfysik
Stephan, Pomp (author)
Uppsala universitet,Tillämpad kärnfysik
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 (creator_code:org_t)
2015-05-25
2015
English.
In: European Physical Journal A. - : Springer Science and Business Media LLC. - 1434-6001 .- 1434-601X. ; 51:59, s. 1-7
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • At the Jyväskylä Ion Guide Isotope Separator On-Line (IGISOL) facility, independent fission yields are measured employing the Penning-trap technique. Fission products are produced, e.g. by impinging protons on a uranium target, and are stopped in a gas-filled chamber. The products are collected by a flow of He gas and guided through a mass separator to a Penning trap, where their masses are identified. This work investigates how fission-product properties, such as mass and energy, affect the ion stopping efficiency in the gas cell. The study was performed using the Geant4 toolkit and the SRIM code. The main results show a nearly mass-independent ion stopping with regard to the wide spread of ion masses and energies, with a proper choice of uranium target thickness. Although small variations were observed, in the order of 5%, the results are within the systematic uncertainties of the simulations. To optimize the stopping efficiency while reducing the systematic errors, different experimental parameters were varied; for instance material thicknesses and He gas pressure. Different parameters influence the mass dependence and could alter the mass dependencies in the ion stopping efficiency.

Subject headings

NATURVETENSKAP  -- Fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences (hsv//eng)

Keyword

IGISOL
FISSION
SIMULATION
Physics with specialization in Nuclear Physics
Fysik med inriktning mot kärnfysik

Publication and Content Type

ref (subject category)
art (subject category)

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