PaperPanorama

Nuclear Theory·nucl-th

Friday·February 2, 2018

10 papers4 primary·6 cross-listed

  1. 01

    Superfluidity in nuclear systems and neutron stars

    Armen Sedrakian🇩🇪 · John W. Clark🇺🇸

    Nuclear matter and finite nuclei exhibit the property of superfluidity by forming Cooper pairs. We review the microscopic theories and methods that are being employed to understand the basic properties of superfluid nuclear systems, with emphasis on the spatially extended matter encountered in neutron stars, supernova envelopes, and nuclear collisions. Our survey of quantum many-body methods includes techniques that employ Green functions, correlated basis functions, and Monte Carlo sampling of quantum states. With respect to empirical realizations of nucleonic and hadronic superfluids, this review is focused on progress that has been made toward quantitative understanding of their properties at the level of microscopic theories of pairing, with emphasis on the condensates that exist under conditions prevailing in neutron-star interiors. These include singlet -wave pairing of neutrons in the inner crust, and, in the quantum fluid interior, singlet- proton pairing and triplet coupled --wave neutron pairing. Additionally, calculations of weak-interaction rates in neutron-star superfluids within the Green function formalism are examined in detail. We close with a discussion of quantum vortex states in nuclear systems and their dynamics in neutron-star superfluid interiors.

    nucl-thastro-ph.HEcond-mat.quant-gasEPJA(2019)·201 citations
  2. 03

    Combination of complex momentum representation and Green's function methods in relativistic mean-field theory

    Min Shi · Zhong-Ming Niu · Haozhao Liang

    We have combined the complex momentum representation method with the Green's function method in the relativistic mean-field framework to establish the RMF-CMR-GF approach. This new approach is applied to study the halo structure of Ca. All the continuum level density of concerned resonant states are calculated accurately without introducing any unphysical parameters, and they are independent of the choice of integral contour. The important single-particle wave functions and densities for the halo phenomenon in Ca are discussed in detail.

    nucl-thnucl-exPRC(2018)·16 citations
  3. 04

    Phenomenology of anomalous chiral transports in heavy-ion collisions

    Xu-Guang Huang🇨🇳

    High-energy Heavy-ion collisions can generate extremely hot quark-gluon matter and also extremely strong magnetic fields and fluid vorticity. Once coupled to chiral anomaly, the magnetic fields and fluid vorticity can induce a variety of novel transport phenomena, including the chiral magnetic effect, chiral vortical effect, etc. Some of them require the environmental violation of parity and thus provide a means to test the possible parity violation in hot strongly interacting matter. We will discuss the underlying mechanism and implications of these anomalous chiral transports in heavy-ion collisions.

    nucl-thhep-phnucl-exEPJ Web Conf.(2018)·1 citation

Affiliations

first authorsco-authorsvia INSPIRE