TY - JOUR
T1 - Delocalization in the hot deformed hypernucleus Λ21Ne
AU - Li, Xin
AU - Chen, Chao Feng
AU - Chen, Qi Bo
AU - Zhou, Xian Rong
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to China Science Publishing & Media Ltd. (Science Press), Shanghai Institute of Applied Physics, the Chinese Academy of Sciences, Chinese Nuclear Society 2026.
PY - 2026/3
Y1 - 2026/3
N2 - We investigate the effects of temperature on the structural evolution and clustering in the hypernucleus, taking Λ21Ne as an example, in the framework of deformed finite-temperature Skyrme–Hartree–Fock. The SkI4 Skyrme force is employed for nucleon–nucleon interaction, while the NSC97f force is used for the hyperon–nucleon interaction. It is found that the system exhibits a strongly deformed ground state with pronounced α-cluster correlations and localized density distributions at low temperatures. As temperature increases, nuclear deformation weakens, the nuclear density spreads over the surface, and clustering gradually diminishes and vanishes entirely at T≈2.8MeV. This is because that the thermal excitations lower the Fermi surface and enhance single-particle level splitting. In particular, owing to the lower excitation threshold of hyperons in the hypernuclear system, the hyperon radii exhibit a stronger temperature dependence than the nucleons. We further analyze the temperature-dependent changes in deformation, single-Λ binding energy, and entropy, providing new insights into the thermal evolution of the hypernuclear structure.
AB - We investigate the effects of temperature on the structural evolution and clustering in the hypernucleus, taking Λ21Ne as an example, in the framework of deformed finite-temperature Skyrme–Hartree–Fock. The SkI4 Skyrme force is employed for nucleon–nucleon interaction, while the NSC97f force is used for the hyperon–nucleon interaction. It is found that the system exhibits a strongly deformed ground state with pronounced α-cluster correlations and localized density distributions at low temperatures. As temperature increases, nuclear deformation weakens, the nuclear density spreads over the surface, and clustering gradually diminishes and vanishes entirely at T≈2.8MeV. This is because that the thermal excitations lower the Fermi surface and enhance single-particle level splitting. In particular, owing to the lower excitation threshold of hyperons in the hypernuclear system, the hyperon radii exhibit a stronger temperature dependence than the nucleons. We further analyze the temperature-dependent changes in deformation, single-Λ binding energy, and entropy, providing new insights into the thermal evolution of the hypernuclear structure.
KW - Cluster structure
KW - Finite temperature
KW - Hypernucleus
KW - Skyrme–Hartree–Fock
UR - https://www.scopus.com/pages/publications/105028432508
U2 - 10.1007/s41365-025-01875-1
DO - 10.1007/s41365-025-01875-1
M3 - 文章
AN - SCOPUS:105028432508
SN - 1001-8042
VL - 37
JO - Nuclear Science and Techniques
JF - Nuclear Science and Techniques
IS - 3
M1 - 56
ER -