PaperPanorama

Nuclear Theory·nucl-th

Friday·June 5, 2020

10 papers4 primary·6 cross-listed

  1. 05

    Dynamical Evidence For a Fifth Force Explanation of the ATOMKI Nuclear Anomalies

    Jonathan L. Feng🇺🇸 · Tim M. P. Tait🇺🇸 · Christopher B. Verhaaren🇺🇸

    Recent anomalies in Be and He nuclear decays can be explained by postulating a fifth force mediated by a new boson . The distributions of both transitions are consistent with the same mass, 17 MeV, providing kinematic evidence for a single new particle explanation. In this work, we examine whether the new results also provide dynamical evidence for a new particle explanation, that is, whether the observed decay rates of both anomalies can be described by a single hypothesis for the boson's interactions. We consider the observed Be and He excited nuclei, as well as a C excited nucleus; together these span the possible quantum numbers up to spin 1. For each transition, we determine whether scalar, pseudoscalar, vector, or axial vector particles can mediate the decay, and we construct the leading operators in a nuclear physics effective field theory that describes them. Assuming parity conservation, the scalar case is excluded and the pseudoscalar case is highly disfavored. Remarkably, however, the protophobic vector gauge boson, first proposed to explain only the Be anomaly, also explains the He anomaly within experimental uncertainties. We predict signal rates for other closely related nuclear measurements, which, if confirmed, will provide overwhelming evidence that a fifth force has been discovered.

    hep-phhep-exnucl-exnucl-thPRD(2020)·69 citations
  2. 06

    Inhomogeneous phases in the quark-meson model with explicit chiral-symmetry breaking

    Michael Buballa🇩🇪 · Stefano Carignano🇪🇸 · Lennart Kurth🇩🇪

    We investigate the existence of inhomogeneous chiral phases in the quark-meson model with explicit chiral-symmetry breaking. We find that the inhomogeneous region shrinks with increasing pion masses but survives for the physical value of m_pi. The instability towards inhomogeneous matter occurs in the scalar channel, while pseudoscalar modes are disfavored.

    hep-phnucl-thEur.Phys.J.ST(2020)·26 citations
  3. 07

    Stellar Signatures of Inhomogeneous Big Bang Nucleosynthesis

    Alexandre Arbey🇫🇷 · Jérémy Auffinger🇫🇷 · Joseph Silk🇫🇷

    We evaluate abundance anomalies generated in patches of the universe where the baryon-to-photon ratio was locally enhanced by possibly many orders of magnitude in the range . Our study is motivated by the possible survival of rare dense regions in the early universe, the most extreme of which, above a critical threshold, collapsed to form primordial black holes. If this occurred, one may expect there to also be a significant population of early-forming stars that formed in similar but subthreshold patches. We derive a range of element abundance signatures by performing BBN simulations at high values of the baryon-to-photon ratio that may be detectable in any surviving first generation stars of around a solar mass. Our predictions apply to metal-poor galactic halo stars, to old globular star clusters and to dwarf galaxies, and we compare with observations in each of these cases.

    astro-ph.COastro-ph.GAastro-ph.SRnucl-thPRD(2020)·15 citations
  4. 08

    Two-loop HTL-resummed thermodynamics for N=4 supersymmetric Yang-Mills theory

    Qianqian Du🇨🇳 · Michael Strickland🇺🇸 · Ubaid Tantary🇺🇸 · Ben-Wei Zhang🇨🇳

    We compute the two-loop hard-thermal-loop (HTL) resummed thermodynamic potential for N=4 supersymmetric Yang-Mills (SYM). Our final result is manifestly gauge-invariant and was renormalized using only simple vacuum energy, gluon mass, scalar mass, and quark mass counter terms. The HTL mass parameters m_D, M_D, and m_q are then determined self-consistently using a variational prescription which results in a set of coupled gap equations. Based on this, we obtain the two-loop HTL-resummed thermodynamic functions of N=4 SYM. We compare our final result with known results obtained in the weak- and strong-coupling limits. We also compare to previously obtained approximately self-consistent HTL resummations and Padé approximants. We find that the two-loop HTL resummed results for the scaled entropy density is a quantitatively reliable approximation to the scaled entropy density for 0 <= lambda <~ 2 and is in agreement with previous approximately self-consistent HTL resummation results for lambda <~ 6.

    hep-phhep-thnucl-thJHEP(2020)·11 citations
  5. 09

    Examining the = 28 shell closure through high-precision mass measurements of Ar

    Maxime Mougeot🇫🇷 · Dinko Atanasov🇩🇪 · Carlo Barbieri🇬🇧 · Klaus Blaum🇩🇪 · Martin Breitenfeld🇨🇭 · Antoine de Roubin🇩🇪 · Thomas Duguet🇫🇷 · Sebastian George🇩🇪 · Frank Herfurth🇩🇪 · Alexander Herlert🇩🇪 · Jason D. Holt🇨🇦 · Jonas Karthein🇩🇪 and 12 other authors

    The strength of the = 28 magic number in neutron-rich argon isotopes is examined through high-precision mass measurements of Ar, performed with the ISOLTRAP mass spectrometer at ISOLDE/CERN. The new mass values are up to 90 times more precise than previous measurements. While they suggest the persistence of the = 28 shell closure for argon, we show that this conclusion has to be nuanced in light of the wealth of spectroscopic data and theoretical investigations performed with the \emph{SDPF-U} phenomenological shell model interaction. Our results are also compared with \emph{ab initio} calculations using the Valence Space In-Medium Similarity Renormalization Group and the Self-Consistent Green's Function approaches. Both calculations provide a very good account of mass systematics at and around = 18 and, generally, a consistent description of the physics in this region. This combined analysis indicates that Ar is the transition between the closed-shell Ca and collective S.

    nucl-exnucl-thPRC(2020)·15 citations
  6. 10

    Polarized electron-deuteron deep-inelastic scattering with spectator nucleon tagging

    W. Cosyn🇺🇸 · C. Weiss🇺🇸

    Background: DIS on the polarized deuteron with detection of a proton in the nuclear breakup region (spectator tagging) represents a unique method for extracting the neutron spin structure functions and studying nuclear modifications. The tagged proton momentum controls the nuclear configuration during the DIS process and enables a differential analysis of nuclear effects. Such measurements could be performed with the future electron-ion collider (EIC) and forward proton detectors if deuteron beam polarization could be achieved. Purpose: Develop theoretical framework for polarized deuteron DIS with spectator tagging. Formulate procedures for neutron spin structure extraction. Methods: A covariant spin density matrix formalism is used to describe general deuteron polarization in collider experiments (vector/tensor, pure/mixed). Light-front (LF) quantum mechanics is employed to factorize nuclear and nucleonic structure in the DIS process. A 4-dimensional representation of LF spin structure is used to construct the polarized deuteron LF wave function and efficiently evaluate the spin sums. Free neutron structure is extracted using the impulse approximation and analyticity in the tagged proton momentum (pole extrapolation). Results: General expressions of the polarized tagged DIS observables in collider experiments. Analytic and numerical study of the polarized deuteron LF spectral function and nucleon momentum distributions. Practical procedures for neutron spin structure extraction from the tagged deuteron spin asymmetries. Conclusions: Spectator tagging provides new tools for precise neutron spin structure measurements. D-wave depolarization and nuclear binding effects can be eliminated through the tagged proton momentum dependence. The methods can be extended to tensor-polarized observables, spin-orbit effects, and diffractive processes.

    hep-phnucl-exnucl-thPRC(2020)·29 citations

Affiliations

first authorsco-authorsvia INSPIRE