首页> 外文期刊>Physical review, C >beta and gamma bands in N=88, 90, and 92 isotones investigated with a five-dimensional collective Hamiltonian based on covariant density functional theory: Vibrations, shape coexistence, and superdeformation
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beta and gamma bands in N=88, 90, and 92 isotones investigated with a five-dimensional collective Hamiltonian based on covariant density functional theory: Vibrations, shape coexistence, and superdeformation

机译:N = 88,90和92个异处的β和γ条带,采用基于协变密度函数理论的五维集体汉密尔顿尼斯,:振动,形状共存和超级信息

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摘要

A comprehensive systematic study is made for the collective beta and gamma bands in even-even isotopes with neutron numbers N = 88 to 92 and proton numbers Z = 62 (Sm) to 70 (Yb). Data, including excitation energies, B(E0) and B(E2) values, and branching ratios from previously published experiments are collated with new data presented for the first time in this study. The experimental data are compared to calculations using a five-dimensional collective Hamiltonian (5DCH) based on the covariant density functional theory (CDFT). A realistic potential in the quadrupole shape parameters V (beta, gamma) is determined from potential energy surfaces (PES) calculated using the CDFT. The parameters of the 5DCH are fixed and contained within the CDFT. Overall, a satisfactory agreement is found between the data and the calculations. In line with the energy staggering S(I) of the levels in the 2(gamma)+ bands, the potential energy surfaces of the CDFT calculations indicate gamma-soft shapes in the N = 88 nuclides, which become gamma rigid for N = 90 and N = 92. The nature of the 0(2)(+) bands changes with atomic number. In the isotopes of Sm to Dy, they can be understood as beta vibrations, but in the Er and Yb isotopes the 0(2)(+) bands have wave functions with large components in a triaxial superdeformed minimum. In the vicinity of Sm-152, the present calculations predict a soft potential in the beta direction but do not find two coexisting minima This is reminiscent of Sm-152 exhibiting an X(5) behavior. The model also predicts that the 0(3)(+) bands are of two-phonon nature, having an energy twice that of the 0(2)(+) band. This is in contradiction with the data and implies that other excitation modes must be invoked to explain their origin.
机译:对于偶数同位素的集体β和γ带,对中子数N = 88至92和质子编号Z = 62(SM)至70(YB),对集体β和γ甚至的同位素进行综合系统研究。包括来自本研究第一次呈现的新数据,将来自先前公布的实验的励磁能量,B(E0)和B(E2)值和分支比例进行数据。将实验数据与基于协调性密度功能理论(CDFT)的五维集体汉密尔顿(5dch)进行比较。从使用CDFT计算的势能表面(PE)确定四极形状参数V(β,伽马)中的现实潜力。 5DCH的参数是固定的并包含在CDFT内。总的来说,数据与计算之间存在满意的协议。根据2(γ)+带中的水平的能量惊人的S(I),CDFT计算的潜在能量表面表示n = 88个核素中的γ-软形状,其变成n = 90的伽马刚性和n = 92. 0(2)(+)频段的性质随原子序数而变化。在SM的同位素到Dy中,它们可以理解为β振动,但在ER和Yb同位素中,0(2)(+)条带具有具有大量成分的波形超惰性最小值。在SM-152附近,本计算预测β方向上的软势,但没有发现两个共存最小值,这使得来自表现出X(5)行为的SM-152。该模型还预测,0(3)(+)频带是双位性质,其能量是0(2)(+)频带的两倍。这与数据矛盾,暗示必须调用其他励磁模式以解释其原点。

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  • 来源
    《Physical review, C》 |2019年第4期|共44页
  • 作者单位

    Univ Zululand Dept Phys Private Bag X1001 ZA-3886 Kwa Dlangezwa South Africa;

    Beihang Univ Sch Phys &

    Nucl Energy Engn Beijing 100191 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol Chongqing 400715 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol Chongqing 400715 Peoples R China;

    Peking Univ Sch Phys State Key Lab Nucl Phys &

    Technol Beijing 100871 Peoples R China;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Western Cape Dept Phys Private Bag X17 ZA-7535 Bellville South Africa;

    Univ Cape Town Dept Phys Private Bag X3 ZA-7701 Rondebosch South Africa;

    Univ Johannesburg Dept Phys POB 524 ZA-2006 Auckland Pk South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    US Naval Acad Dept Phys Annapolis MD 21402 USA;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    CSNSM IN2P3 CNRS Orsay Campus F-91405 Orsay France;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Zululand Dept Phys Private Bag X1001 ZA-3886 Kwa Dlangezwa South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Western Cape Dept Phys Private Bag X17 ZA-7535 Bellville South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Zululand Dept Phys Private Bag X1001 ZA-3886 Kwa Dlangezwa South Africa;

    Univ Sofia Fac Phys Sofia 1164 Bulgaria;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Stellenbosch Univ Dept Phys Private Bag X1 ZA-7535 Matieland South Africa;

    Univ Zululand Dept Phys Private Bag X1001 ZA-3886 Kwa Dlangezwa South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    MTA Atomki POB 51 H-4001 Debrecen Hungary;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Univ Tennessee Dept Phys &

    Astron Knoxville TN 37996 USA;

    Florida State Univ Dept Phys Tallahassee FL 32306 USA;

    Rhodes Univ Dept Phys POB 94 ZA-6140 Grahamstown South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    MTA Atomki POB 51 H-4001 Debrecen Hungary;

    Univ Jyvaskyla Dept Phys POB 35 FI-40014 Jyvaskyla Finland;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

    Natl Res Fdn iThemba Labs POB 722 ZA-7129 Somerset West South Africa;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 原子核物理学、高能物理学;
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