PaperPanorama

Nuclear Theory·nucl-th

Thursday·February 3, 2022

7 papers3 primary·4 cross-listed

  1. 04

    Cooling of Neutron Stars admixed with Light Dark Matter: a case study

    M. Ángeles Pérez-García🇪🇸 · H. Grigorian🇷🇺 · C. Albertus🇪🇸 · D. Barba🇪🇸 · J. Silk🇫🇷

    Neutron Stars (NSs) are born as hot, lepton-rich objects that evolve according to the standard paradigm through subsequent stages where they radiate the excess of energy by emitting, first, neutrinos and, later on, photons. Current descriptions based on Standard Model calculations cannot fully explain all the existing cooling data series for the dozens of objects that have been reported. In this work, we consider the intriguing possibility that cooling NSs could be actually admixed with a fraction of light dark matter (LDM), . We focus on a particular case study assuming a generic light candidate with mass that undergoes self-annihilating reactions through pseudoscalar mediators producing neutrinos in the final state. We include one additional feature, allowing thermal conduction from LDM while inside the dark core. By performing simulations of the temperature evolution in the NS, we find that cooling patterns could be distorted by the presence of LDM and discuss these results in light of their observability.

    hep-phnucl-thPLB(2022)·17 citations
  2. 05

    Nuclear matter in 1+1 dimensions

    Robert M. Konik🇺🇸 · Marton Lajer🇺🇸 · Robert D. Pisarski🇺🇸 · Alexei M. Tsvelik🇺🇸

    We review the solution of QCD in two spacetime dimensions. Following the analysis of Baluni, for a single flavor the model can be analyzed using Abelian bosonization. The theory can be analyzed in strong coupling, when the quarks are much lighter than the gauge coupling. In this limit, the theory is given by a Luttinger liquid.

    hep-phcond-mat.str-elhep-thnucl-thUniverse(2021)·1 citation
  3. 06

    A pedagagical introduction to the Lifshitz regime

    Robert D. Pisarski🇺🇸 · Vladimir V. Skokov🇺🇸 · Alexei M. Tsvelik🇺🇸

    We give an elementary and pedagogical review of the phase diagrams which are possible in Quantum ChromoDynamics (QCD). Currently, the emphasis is upon the appearance of a critical endpoint, where disordered and ordered phases meet. In many models, though, a Lifshitz point also arises. At a Lifshitz point, three phases meet: disordered, ordered, and one where spatially inhomogeneous phases arise. At the level of mean field theory, the appearance of a Lifshitz point does not dramatically affect the phase diagram. We argue, however, that fluctuations about the Lifshitz point are very strong in the infrared, and significantly alter the phase diagram. We discuss at length the analogy to inhomogenous polymers, where the Lifshitz regime produces a bicontinuous microemulsion. We briefly mention the possible relevance to the phase diagram of QCD.

    hep-phnucl-thUniverse(2019)·18 citations

Affiliations

first authorsco-authorsvia INSPIRE