Use of two-body close-coupling formalisms to calculate three-body breakup cross sections
We analyze the consequences of discretizing one of the two continua in three-body breakup to reduce it to a two-body close-coupling problem. We identify the origin of oscillations in the singly differential cross section in those {open_quotes}convergent close-coupling{close_quotes} calculations as l...
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Veröffentlicht in: | Physical Review A 1999-11, Vol.60 (5), p.3740-3749 |
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creator | Rescigno, T. N. McCurdy, C. W. Isaacs, W. A. Baertschy, M. |
description | We analyze the consequences of discretizing one of the two continua in three-body breakup to reduce it to a two-body close-coupling problem. We identify the origin of oscillations in the singly differential cross section in those {open_quotes}convergent close-coupling{close_quotes} calculations as lying only in the way the cross section is calculated from the wave function and not in the wave function itself. The anomalous {open_quotes}step-function{close_quotes} behavior of those calculations is derived from a stationary-phase argument. Calculations are presented on the Temkin-Poet model for electron-impact ionization of hydrogen, a breakup problem with exponential potentials, and an analytically solvable model. The anomalies associated with two-body close-coupling calculations are demonstrated using wave functions from complex exterior scaling calculations that otherwise give converged results without any anomalies. {copyright} {ital 1999} {ital The American Physical Society} |
doi_str_mv | 10.1103/PhysRevA.60.3740 |
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Calculations are presented on the Temkin-Poet model for electron-impact ionization of hydrogen, a breakup problem with exponential potentials, and an analytically solvable model. 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W.</creatorcontrib><creatorcontrib>Isaacs, W. A.</creatorcontrib><creatorcontrib>Baertschy, M.</creatorcontrib><collection>CrossRef</collection><collection>OSTI.GOV</collection><jtitle>Physical Review A</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Rescigno, T. N.</au><au>McCurdy, C. W.</au><au>Isaacs, W. A.</au><au>Baertschy, M.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Use of two-body close-coupling formalisms to calculate three-body breakup cross sections</atitle><jtitle>Physical Review A</jtitle><date>1999-11-01</date><risdate>1999</risdate><volume>60</volume><issue>5</issue><spage>3740</spage><epage>3749</epage><pages>3740-3749</pages><issn>1050-2947</issn><eissn>1094-1622</eissn><abstract>We analyze the consequences of discretizing one of the two continua in three-body breakup to reduce it to a two-body close-coupling problem. We identify the origin of oscillations in the singly differential cross section in those {open_quotes}convergent close-coupling{close_quotes} calculations as lying only in the way the cross section is calculated from the wave function and not in the wave function itself. The anomalous {open_quotes}step-function{close_quotes} behavior of those calculations is derived from a stationary-phase argument. Calculations are presented on the Temkin-Poet model for electron-impact ionization of hydrogen, a breakup problem with exponential potentials, and an analytically solvable model. The anomalies associated with two-body close-coupling calculations are demonstrated using wave functions from complex exterior scaling calculations that otherwise give converged results without any anomalies. {copyright} {ital 1999} {ital The American Physical Society}</abstract><cop>United States</cop><doi>10.1103/PhysRevA.60.3740</doi><tpages>10</tpages></addata></record> |
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subjects | COUPLINGS DIFFERENTIAL CROSS SECTIONS ELECTRON-ATOM COLLISIONS HYDROGEN IONIZATION PHYSICS THREE-BODY PROBLEM |
title | Use of two-body close-coupling formalisms to calculate three-body breakup cross sections |
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