Charge-changing-cross-section measurements of $^{12-16}$C at around $45A$ MeV and development of a Glauber model for incident energies $10A-2100A$ MeV
D.T. Tran, H.J. Ong, T.T. Nguyen, I. Tanihata, N. Aoi, Y. Ayyad, P.Y., Chan, M. Fukuda, T. Hashimoto, T.H. Hoang, E. Ideguchi, A. Inoue, T., Kawabata, L.H. Khiem, W.P. Lin, K. Matsuta, M. Mihara, S. Momota, D. Nagae,, N.D. Nguyen, D. Nishimura, A. Ozawa, P.P. Ren, H. Sakaguchi

TL;DR
This study measures charge-changing cross sections of carbon isotopes at low energies, develops a Glauber model applicable from 10A to 2100A MeV, and uses it to extract nuclear radii and validate against experimental data.
Contribution
The paper introduces a finite-range Glauber model with a global parameter set for a wide energy range, enabling accurate analysis of reaction and charge-changing cross sections.
Findings
Excellent agreement between model calculations and experimental data.
Reconfirmation of the importance of sub-100A MeV measurements for neutron-skin studies.
Proton root-mean-square radii of $^{12-16}$C are consistent with electron scattering results.
Abstract
We have measured for the first time the charge-changing cross sections () of C on a C target at energies below MeV. To analyze these low-energy data, we have developed a finite-range Glauber model with a global parameter set within the optical-limit approximation which is applicable to reaction cross section () and measurements at incident energies from 10 to MeV. Adopting the proton-density distribution of C known from the electron-scattering data, as well as the bare total nucleon-nucleon cross sections, and the real-to-imaginary-part ratios of the forward proton-proton elastic scattering amplitude available in the literatures, we determine the energy-dependent slope parameter of the proton-neutron elastic differential cross section so as to reproduce the existing…
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