PaperPanorama

Nuclear Theory·nucl-th

Friday·September 10, 2021

4 papers2 primary·2 cross-listed

  1. 01

    Translationally invariant matrix elements of general one-body operators

    Petr Navratil

    Precision tests of the Standard Model and searches for beyond the Standard Model physics often require nuclear structure input. There has been a tremendous progress in the development of nuclear ab initio techniques capable of providing accurate nuclear wave functions. For the calculation of observables, matrix elements of complicated operators need to be evaluated. Typically, these matrix elements would contain spurious contributions from the center-of-mass (COM) motion. This could be problematic when precision results are sought. Here, we derive a transformation relying on properties of harmonic oscillator wave functions that allows an exact removal of the COM motion contamination applicable to any one-body operator depending on nucleon coordinates and momenta. Resulting many-nucleon matrix elements are translationally invariant provided that the nuclear eigenfunctions factorize as products of the intrinsic and COM components as is the case, e.g., in the no-core shell model approach. An application of the transformation has been recently demonstrated in calculations of the nuclear structure recoil corrections for the beta-decay of 6He.

    nucl-thPRC(2021)·8 citations
  2. 02

    Possible antimagnetic rotation bands in Pd: a particle-number conserving investigation

    Jian-Qin Ma · Zhen-Hua Zhang

    The particle-number conserving method based on the cranked shell model is adopted to investigate the possible antimagnetic rotation bands in Pd. The experimental kinematic and dynamic moments of inertia, together with the values are reproduced quite well. The occupation probability of each neutron and proton orbital in the observed antimagnetic rotation band is analyzed and its configuration is confirmed. The contribution of each major shell to the total angular momentum alignment with rotational frequency in the lowest-lying positive and negative parity bands is analyzed. The level crossing mechanism of these bands is understood clearly. The possible antimagnetic rotation in the negative parity branch is predicted, which sensitively depends on the alignment of the neutron (, ) pseudo-spin partners. The two-shears-like mechanism for this antimagnetic rotation is investigated by examining the closing of the proton hole angular momentum vector towards the neutron angular momentum vector.

    nucl-thnucl-exNPA(2021)·7 citations

Affiliations

first authorsco-authorsvia INSPIRE