Autoionizing states and their relevance in electron-ion recombination

Atomic physics plays an important role in determining the evolution stages in a wide range of laboratory and cosmic plasmas. Therefore, the main contribution to our ability to model, infer and control plasma sources is the knowledge of underlying atomic processes. Of particular importance are reliab...

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Main Author: Nikolić, Dragan
Format: Doctoral Thesis
Language:English
Published: Stockholms universitet, Fysikum 2004
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-152
http://nbn-resolving.de/urn:isbn:91-7265-906-8
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spelling ndltd-UPSALLA1-oai-DiVA.org-su-1522013-01-08T13:03:58ZAutoionizing states and their relevance in electron-ion recombinationengAutojonizujuća stanja i njihov značaj u rekombinaciji jona sa elektronimaNikolić, DraganStockholms universitet, FysikumStockholm : Fysikum2004Electron-ion recombinationAutoionizationElectron correlation calculationsDoubly excited statesRelativistic many-body perturbation theoryCoupled-cluster methodologyIntruder state problemPhysicsFysikAtomic physics plays an important role in determining the evolution stages in a wide range of laboratory and cosmic plasmas. Therefore, the main contribution to our ability to model, infer and control plasma sources is the knowledge of underlying atomic processes. Of particular importance are reliable low temperature dielectronic recombination (DR) rate coefficients. This thesis provides systematically calculated DR rate coefficients of lithium-like beryllium and sodium ions via ∆n = 0 doubly excited resonant states. The calculations are based on complex-scaled relativistic many-body perturbation theory in an all-order formulation within the single- and double-excitation coupled-cluster scheme, including radiative corrections. Comparison of DR resonance parameters (energy levels, autoionization widths, radiative transition probabilities and strengths) between our theoretical predictions and the heavy-ion storage rings experiments (CRYRING-Stockholm and TSRHeidelberg) shows good agreement. The intruder state problem is a principal obstacle for general application of the coupled-cluster formalism on doubly excited states. Thus, we have developed a technique designed to avoid the intruder state problem. It is based on a convenient partitioning of the Hilbert space and reformulation of the conventional set of pairequations. The general aspects of this development are discussed, and the effectiveness of its numerical implementation (within the non-relativistic framework) is selectively illustrated on autoionizing doubly excited states of helium. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-152urn:isbn:91-7265-906-8application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Electron-ion recombination
Autoionization
Electron correlation calculations
Doubly excited states
Relativistic many-body perturbation theory
Coupled-cluster methodology
Intruder state problem
Physics
Fysik
spellingShingle Electron-ion recombination
Autoionization
Electron correlation calculations
Doubly excited states
Relativistic many-body perturbation theory
Coupled-cluster methodology
Intruder state problem
Physics
Fysik
Nikolić, Dragan
Autoionizing states and their relevance in electron-ion recombination
description Atomic physics plays an important role in determining the evolution stages in a wide range of laboratory and cosmic plasmas. Therefore, the main contribution to our ability to model, infer and control plasma sources is the knowledge of underlying atomic processes. Of particular importance are reliable low temperature dielectronic recombination (DR) rate coefficients. This thesis provides systematically calculated DR rate coefficients of lithium-like beryllium and sodium ions via ∆n = 0 doubly excited resonant states. The calculations are based on complex-scaled relativistic many-body perturbation theory in an all-order formulation within the single- and double-excitation coupled-cluster scheme, including radiative corrections. Comparison of DR resonance parameters (energy levels, autoionization widths, radiative transition probabilities and strengths) between our theoretical predictions and the heavy-ion storage rings experiments (CRYRING-Stockholm and TSRHeidelberg) shows good agreement. The intruder state problem is a principal obstacle for general application of the coupled-cluster formalism on doubly excited states. Thus, we have developed a technique designed to avoid the intruder state problem. It is based on a convenient partitioning of the Hilbert space and reformulation of the conventional set of pairequations. The general aspects of this development are discussed, and the effectiveness of its numerical implementation (within the non-relativistic framework) is selectively illustrated on autoionizing doubly excited states of helium.
author Nikolić, Dragan
author_facet Nikolić, Dragan
author_sort Nikolić, Dragan
title Autoionizing states and their relevance in electron-ion recombination
title_short Autoionizing states and their relevance in electron-ion recombination
title_full Autoionizing states and their relevance in electron-ion recombination
title_fullStr Autoionizing states and their relevance in electron-ion recombination
title_full_unstemmed Autoionizing states and their relevance in electron-ion recombination
title_sort autoionizing states and their relevance in electron-ion recombination
publisher Stockholms universitet, Fysikum
publishDate 2004
url http://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-152
http://nbn-resolving.de/urn:isbn:91-7265-906-8
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