TY - JOUR
T1 - Nuclear mass table in deformed relativistic Hartree–Bogoliubov theory in continuum, I
T2 - Even–even nuclei
AU - DRHBc Mass Table Collaboration
AU - Zhang, Kaiyuan
AU - Cheoun, Myung Ki
AU - Choi, Yong Beom
AU - Chong, Pooi Seong
AU - Dong, Jianmin
AU - Dong, Zihao
AU - Du, Xiaokai
AU - Geng, Lisheng
AU - Ha, Eunja
AU - He, Xiao Tao
AU - Heo, Chan
AU - Ho, Meng Chit
AU - In, Eun Jin
AU - Kim, Seonghyun
AU - Kim, Youngman
AU - Lee, Chang Hwan
AU - Lee, Jenny
AU - Li, Hexuan
AU - Li, Zhipan
AU - Luo, Tianpeng
AU - Meng, Jie
AU - Mun, Myeong Hwan
AU - Niu, Zhongming
AU - Pan, Cong
AU - Papakonstantinou, Panagiota
AU - Shang, Xinle
AU - Shen, Caiwan
AU - Shen, Guofang
AU - Sun, Wei
AU - Sun, Xiang Xiang
AU - Tam, Chi Kin
AU - Thaivayongnou,
AU - Wang, Chen
AU - Wang, Xingzhi
AU - Wong, Sau Hei
AU - Wu, Jiawei
AU - Wu, Xinhui
AU - Xia, Xuewei
AU - Yan, Yijun
AU - Yeung, Ryan Wai Yen
AU - Yiu, To Chung
AU - Zhang, Shuangquan
AU - Zhang, Wei
AU - Zhang, Xiaoyan
AU - Zhao, Qiang
AU - Zhou, Shan Gui
N1 - Publisher Copyright:
© 2022 Elsevier Inc.
PY - 2022/3
Y1 - 2022/3
N2 - Ground-state properties of even–even nuclei with 8≤Z≤120 from the proton drip line to the neutron drip line have been investigated using the deformed relativistic Hartree–Bogoliubov theory in continuum (DRHBc) with the density functional PC-PK1. With the effects of deformation and continuum included simultaneously, 2583 even–even nuclei are predicted to be bound. The calculated binding energies, two-nucleon separation energies, root-mean-square (rms) radii of neutron, proton, matter, and charge distributions, quadrupole deformations, and neutron and proton Fermi surfaces are tabulated and compared with available experimental data. The rms deviation from the 637 mass data is 1.518 MeV, providing one of the best microscopic descriptions for nuclear masses. The drip lines obtained from DRHBc calculations are compared with other calculations, including the spherical relativistic continuum Hartree–Bogoliubov (RCHB) and triaxial relativistic Hartree–Bogoliubov (TRHB) calculations with PC-PK1. The deformation and continuum effects on the limits of the nuclear landscape are discussed. Possible peninsulas consisting of bound nuclei beyond the two-neutron drip line are predicted. The systematics of the two-nucleon separation energies, two-nucleon gaps, rms radii, quadrupole deformations, potential energy curves, neutron densities, neutron mean-field potentials, and pairing energies in the DRHBc calculations are also discussed. In addition, the α decay energies extracted are in good agreement with available data.
AB - Ground-state properties of even–even nuclei with 8≤Z≤120 from the proton drip line to the neutron drip line have been investigated using the deformed relativistic Hartree–Bogoliubov theory in continuum (DRHBc) with the density functional PC-PK1. With the effects of deformation and continuum included simultaneously, 2583 even–even nuclei are predicted to be bound. The calculated binding energies, two-nucleon separation energies, root-mean-square (rms) radii of neutron, proton, matter, and charge distributions, quadrupole deformations, and neutron and proton Fermi surfaces are tabulated and compared with available experimental data. The rms deviation from the 637 mass data is 1.518 MeV, providing one of the best microscopic descriptions for nuclear masses. The drip lines obtained from DRHBc calculations are compared with other calculations, including the spherical relativistic continuum Hartree–Bogoliubov (RCHB) and triaxial relativistic Hartree–Bogoliubov (TRHB) calculations with PC-PK1. The deformation and continuum effects on the limits of the nuclear landscape are discussed. Possible peninsulas consisting of bound nuclei beyond the two-neutron drip line are predicted. The systematics of the two-nucleon separation energies, two-nucleon gaps, rms radii, quadrupole deformations, potential energy curves, neutron densities, neutron mean-field potentials, and pairing energies in the DRHBc calculations are also discussed. In addition, the α decay energies extracted are in good agreement with available data.
UR - https://www.scopus.com/pages/publications/85124189936
U2 - 10.1016/j.adt.2022.101488
DO - 10.1016/j.adt.2022.101488
M3 - 文章
AN - SCOPUS:85124189936
SN - 0092-640X
VL - 144
JO - Atomic Data and Nuclear Data Tables
JF - Atomic Data and Nuclear Data Tables
M1 - 101488
ER -