Ab initio nucleon-nucleus elastic scattering with chiral effective field theory uncertainties
R. B. Baker, B. McClung, Ch. Elster, P. Maris, S. P. Weppner, M., Burrows, G. Popa

TL;DR
This paper extends the analysis of chiral effective field theory uncertainties to nucleon-nucleus elastic scattering, demonstrating the applicability of convergence diagnostics and quantifying truncation errors for energies between 65 and 185 MeV.
Contribution
It applies chiral EFT uncertainty quantification methods to nucleon-nucleus scattering, showing their effectiveness beyond few-body systems and at higher energies.
Findings
Chiral truncation uncertainties are similar to those in few-body systems.
Convergence is reasonable near 100 MeV but deteriorates at higher energies.
Neutron differential cross section correlates strongly with NN Wolfenstein amplitudes.
Abstract
Background: Effective interactions for nucleon-nucleus () elastic scattering from first principles require the use of the same nucleon-nucleon () interaction in the structure and reaction calculations, and a consistent treatment of the relevant operators at each order. Purpose: Truncation uncertainties of chiral forces have been studied for scattering observables in few-body systems and for bound state properties of light nuclei. We extend this to elastic scattering. Methods: With the spectator expansion of multiple scattering theory and the no-core shell model, we use a chiral interaction from the LENPIC collaboration to consistently calculate the leading order effective interaction up to third chiral order (N2LO) and extract elastic scattering observables. We quantify the chiral truncation error using pointwise and correlated methods. Results: We analyze…
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Taxonomy
TopicsNuclear physics research studies · Scientific Research and Discoveries · Geophysics and Gravity Measurements
