Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data

The extraction of the relative abundances of short-range correlated (SRC) nucleon pairs from inclusive electron scattering is studied using the generalized contact formalism (GCF) with several nuclear interaction models. GCF calculations can reproduce the observed scaling of the cross-section ratios...

Full description

Bibliographic Details
Main Authors: Weiss, R, Denniston, AW, Pybus, JR, Hen, O, Piasetzky, E, Schmidt, A, Weinstein, LB, Barnea, N
Other Authors: Massachusetts Institute of Technology. Department of Physics
Format: Article
Language:English
Published: American Physical Society (APS) 2022
Online Access:https://hdl.handle.net/1721.1/142003
_version_ 1826190466113077248
author Weiss, R
Denniston, AW
Pybus, JR
Hen, O
Piasetzky, E
Schmidt, A
Weinstein, LB
Barnea, N
author2 Massachusetts Institute of Technology. Department of Physics
author_facet Massachusetts Institute of Technology. Department of Physics
Weiss, R
Denniston, AW
Pybus, JR
Hen, O
Piasetzky, E
Schmidt, A
Weinstein, LB
Barnea, N
author_sort Weiss, R
collection MIT
description The extraction of the relative abundances of short-range correlated (SRC) nucleon pairs from inclusive electron scattering is studied using the generalized contact formalism (GCF) with several nuclear interaction models. GCF calculations can reproduce the observed scaling of the cross-section ratios for nuclei relative to deuterium at high xB and large Q2, a2=(σA/A)/(σd/2). In the nonrelativistic instant-form formulation, the calculation is very sensitive to the model parameters and only reproduces the data using parameters that are inconsistent with ab initio many-body calculations. Using a light-cone GCF formulation significantly decreases this sensitivity and improves the agreement with ab initio calculations. The ratio of similar mass isotopes, such as Ca40 and Ca48, should be sensitive to the nuclear asymmetry dependence of SRCs, but is found to also be sensitive to low-energy nuclear structure. Thus the empirical association of SRC pair abundances with the measured a2 values is only accurate to about 20%. Improving this will require cross-section calculations that reproduce the data while properly accounting for both nuclear structure and relativistic effects.
first_indexed 2024-09-23T08:40:22Z
format Article
id mit-1721.1/142003
institution Massachusetts Institute of Technology
language English
last_indexed 2024-09-23T08:40:22Z
publishDate 2022
publisher American Physical Society (APS)
record_format dspace
spelling mit-1721.1/1420032023-02-09T20:08:41Z Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data Weiss, R Denniston, AW Pybus, JR Hen, O Piasetzky, E Schmidt, A Weinstein, LB Barnea, N Massachusetts Institute of Technology. Department of Physics The extraction of the relative abundances of short-range correlated (SRC) nucleon pairs from inclusive electron scattering is studied using the generalized contact formalism (GCF) with several nuclear interaction models. GCF calculations can reproduce the observed scaling of the cross-section ratios for nuclei relative to deuterium at high xB and large Q2, a2=(σA/A)/(σd/2). In the nonrelativistic instant-form formulation, the calculation is very sensitive to the model parameters and only reproduces the data using parameters that are inconsistent with ab initio many-body calculations. Using a light-cone GCF formulation significantly decreases this sensitivity and improves the agreement with ab initio calculations. The ratio of similar mass isotopes, such as Ca40 and Ca48, should be sensitive to the nuclear asymmetry dependence of SRCs, but is found to also be sensitive to low-energy nuclear structure. Thus the empirical association of SRC pair abundances with the measured a2 values is only accurate to about 20%. Improving this will require cross-section calculations that reproduce the data while properly accounting for both nuclear structure and relativistic effects. 2022-04-21T13:55:42Z 2022-04-21T13:55:42Z 2021 2022-04-21T13:34:47Z Article http://purl.org/eprint/type/JournalArticle https://hdl.handle.net/1721.1/142003 Weiss, R, Denniston, AW, Pybus, JR, Hen, O, Piasetzky, E et al. 2021. "Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data." Physical Review C, 103 (3). en 10.1103/PHYSREVC.103.L031301 Physical Review C Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use. application/pdf American Physical Society (APS) APS
spellingShingle Weiss, R
Denniston, AW
Pybus, JR
Hen, O
Piasetzky, E
Schmidt, A
Weinstein, LB
Barnea, N
Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data
title Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data
title_full Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data
title_fullStr Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data
title_full_unstemmed Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data
title_short Extracting the number of short-range correlated nucleon pairs from inclusive electron scattering data
title_sort extracting the number of short range correlated nucleon pairs from inclusive electron scattering data
url https://hdl.handle.net/1721.1/142003
work_keys_str_mv AT weissr extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT dennistonaw extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT pybusjr extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT heno extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT piasetzkye extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT schmidta extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT weinsteinlb extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata
AT barnean extractingthenumberofshortrangecorrelatednucleonpairsfrominclusiveelectronscatteringdata