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Probing Transport Theories via Two-Proton Source Imaging

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arxiv nucl-ex/0301013 v1 pith:U6VJVKOE submitted 2003-01-23 nucl-ex

Probing Transport Theories via Two-Proton Source Imaging

classification nucl-ex
keywords transporttwo-protonanalysiscomparisonscorrelationemittingfunctionsimaging
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Imaging technique is applied to two-proton correlation functions to extract quantitative information about the space-time properties of the emitting source and about the fraction of protons that can be attributed to fast emission mechanisms. These new analysis techniques resolve important ambiguities that bedeviled prior comparisons between measured correlation functions and those calculated by transport theory. Quantitative comparisons to transport theory are presented here. The results of the present analysis differ from those reported previously for the same reaction systems. The shape of the two-proton emitting sources are strongly sensitive to the details about the in-medium nucleon-nucleon cross sections and their density dependence.

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Cited by 1 Pith paper

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    A first proton-proton femtoscopy correlation function measured with the SπRIT TPC in 132Sn+124Sn collisions at 270 MeV/u shows the expected attractive-interaction peak near 20 MeV/c.