Effective field theory for weakly bound two-neutron halo nuclei: Corrections from neutron-neutron effective range
Davi B. Costa, Masaru Hongo, and Dam Thanh Son
Phys. Rev. C 112, 014001 (2025) - Published 7 July, 2025
Machine learning approach to trapped many-fermion systems
Paulo F. Bedaque, Hersh Kumar, and Andy Sheng
Phys. Rev. C 112, 014002 (2025) - Published 7 July, 2025
Quantum corrections at second order in derivatives to the dynamics of small nonrelativistic fluids
Lars H. Heyen, Giuliano Giacalone, and Stefan Floerchinger
Phys. Rev. C 112, 014003 (2025) - Published 8 July, 2025
Further theoretical study on the renormalization group aspect of perturbative corrections
C.-J. Yang
Phys. Rev. C 112, 014004 (2025) - Published 14 July, 2025
Systematic study of large-momentum distribution in nuclei with the operator product expansion
Jiexin Yu (余杰鑫) and Bingwei Long (龙炳蔚)
Phys. Rev. C 112, 014005 (2025) - Published 17 July, 2025
Temperature-dependent ultracold neutron transmission in gas: A test of the Young-Koppel model
G. Bison, R. Grössle, K. Kirch, B. Lauss, F. Priester, I. Rienäcker, and G. Zsigmond
Phys. Rev. C 112, 014007 (2025) - Published 21 July, 2025
Quantum Monte Carlo calculations of neutron- scattering via an integral relation
Abraham R. Flores, Kenneth M. Nollett, and Maria Piarulli
Phys. Rev. C 112, 014008 (2025) - Published 23 July, 2025
Charge-dependent nucleon-nucleon interaction at in nuclear lattice effective field theory
Chengxin Wu, Teng Wang, Bing-Nan Lu, and Ning Li
Phys. Rev. C 112, 014009 (2025) - Published 29 July, 2025
The nucleon-nucleon interaction is studied in chiral effective field theory on the lattice. For the first time isospin-breaking effects, charge-independence breaking as well as charge-symmetry breaking, and the two-pion exchange interaction up to next-to-next-to-next-to leading order are included on the lattice. A high-quality description of the two-nucleon phase-shift and mixing-angle parameters is achieved up to 200 MeV/ relative momentum. The deuteron properties are accurately reproduced. The work provides a promising basis to apply lattice effective field theory to nuclear many-body problems.




