Highlights

Gravastar formation: What can be the evidence of a black hole?

Ken-ichi Nakao, Chul-Moon Yoo, and Tomohiro Harada

Phys. Rev. D 99, 044027 (2019) - Published 15 February, 2019

The authors present a novel model for the production of gravastars, which are an alternative to black holes as the endpoint of gravitational collapse. They specifically study a thin spherical shell undergoing gravitational contraction. This model is dynamical, in contrast to the usually available static studies.

Measurements using the inelasticity distribution of multi-TeV neutrino interactions in IceCube

M. G. Aartsen et al. (IceCube Collaboration)

Phys. Rev. D 99, 032004 (2019) - Published 13 February, 2019

Using a sample of contained very high-energy neutrino interactions in IceCube obtained from five years of data, the authors reconstruct their energy and inelasticity, the latter being a measure of a neutrino’s energy transferred to hadrons. The inelasticity distribution is found to be consistent with the existent calculations across the energy range from ~ 1 TeV to ~ 100 TeV.

Probing ultralight bosons with binary black holes

Daniel Baumann, Horng Sheng Chia, and Rafael A. Porto

Phys. Rev. D 99, 044001 (2019) - Published 4 February, 2019

Gravitational-wave signals could contain clues to extremely low-mass particles predicted by extensions of the standard model of particle physics.

Forward dihadron back-to-back correlations in pA collisions

Javier L. Albacete, Giuliano Giacalone, Cyrille Marquet, and Marek Matas

Phys. Rev. D 99, 014002 (2019) - Published 2 January, 2019

In order to study predictions of the Color-Glass Condensate approach, the authors of this paper consider di-hadron correlation functions for proton-proton or proton-nucleus collisions. For the first time, they make use of transverse-momentum-dependent gluon distributions evolved with running-coupling corrections, finding good agreement with existing data.

Neutrino charge radii from COHERENT elastic neutrino-nucleus scattering

M. Cadeddu, C. Giunti, K. A. Kouzakov, Y. F. Li, A. I. Studenikin, and Y. Y. Zhang

Phys. Rev. D 98, 113010 (2018) - Published 26 December, 2018

Using data from the COHERENT experiment, the authors put bounds on neutrino electromagnetic charge radii, including the first bounds on the transition charge radii. These results show promising prospects for current and upcoming neutrino-nucleus scattering experiments.

Measurement of cos2β in B0D(*)h0 with DKS0π+π decays by a combined time-dependent Dalitz plot analysis of BaBar and Belle data

I. Adachi et al. (BaBar Collaboration, Belle Collaboration)

Phys. Rev. D 98, 112012 (2018) - Published 26 December, 2018

Two bottom-quark-factory experiments combine their data to largely resolve an ambiguity in a key CP-violation mixing angle.

Linear sigma EFT for nearly conformal gauge theories

T. Appelquist, R. C. Brower, G. T. Fleming, A. Gasbarro, A. Hasenfratz, J. Ingoldby, J. Kiskis, J. C. Osborn, C. Rebbi, E. Rinaldi, D. Schaich, P. Vranas, E. Weinberg, and O. Witzel (Lattice Strong Dynamics (LSD) Collaboration)

Phys. Rev. D 98, 114510 (2018) - Published 20 December, 2018

By including new operators which break the chiral symmetry, the authors show how a linear sigma model can describe chiral symmetry breaking for a large number of flavors, where the sigma mass is light.

Quantum extension of the Kruskal spacetime

Abhay Ashtekar, Javier Olmedo, and Parampreet Singh

Phys. Rev. D 98, 126003 (2018) - Published 10 December, 2018

Loop quantum gravity—a theory that extends general relativity by quantizing spacetime—predicts that black holes evolve into white holes.

Casimir effect in (2+1)-dimensional Yang-Mills theory as a probe of the magnetic mass

Dimitra Karabali and V. P. Nair

Phys. Rev. D 98, 105009 (2018) - Published 20 November, 2018

The authors compute the Casimir energy of two parallel static wires at zero temperature in pure (2+1)- dimensional Yang-Mills theory. They show that the result is in good agreement with recent lattice simulations.

Heating of the intergalactic medium by the cosmic microwave background during cosmic dawn

Tejaswi Venumadhav, Liang Dai, Alexander Kaurov, and Matias Zaldarriaga

Phys. Rev. D 98, 103513 (2018) - Published 14 November, 2018

Motivated by results from the EDGES experiment, the authors investigate a novel mechanism for heating up the intergalactic medium, just prior to the first star formation. This mechanism contributes to the spin temperature of the 21-cm hyperfine line of atomic hydrogen.

Search for a dark photon in electroproduced e+e pairs with the Heavy Photon Search experiment at JLab

P. H. Adrian et al. (Heavy Photon Search Collaboration)

Phys. Rev. D 98, 091101(R) (2018) - Published 12 November, 2018

In a successful engineering run, the Heavy Photon Search Collaboration demonstrates that its upcoming heavy photon search experiment will be able to probe so far unexplored parameter regions in the search for dark photons.

Dark matter hurricane: Measuring the S1 stream with dark matter detectors

Ciaran A. J. O’Hare, Christopher McCabe, N. Wyn Evans, GyuChul Myeong, and Vasily Belokurov

Phys. Rev. D 98, 103006 (2018) - Published 7 November, 2018

The dark matter in our stellar neighborhood may be moving at high speed, which might produce a signature that future dark matter searches could detect.

Strong constraints on light dark matter interpretation of the EDGES signal

Rennan Barkana, Nadav Joseph Outmezguine, Diego Redigolo, and Tomer Volansky

Phys. Rev. D 98, 103005 (2018) - Published 6 November, 2018

This paper contends that the putative explanation of the EDGES 21-cm anomaly through light dark matter-induced cooling is principally not viable, owing to strong constraints on the process, set by 5th force experiments and stellar cooling data.

Parkes Pulsar Timing Array constraints on ultralight scalar-field dark matter

Nataliya K. Porayko et al. (PPTA Collaboration)

Phys. Rev. D 98, 102002 (2018) - Published 5 November, 2018

The existence of ultralight bosonic dark matter with mass of the order of 10^{-22} eV has been proposed to resolve certain observational puzzles. A mechanism identified by Khmelnitsky and Rubakov relates the presence of ultralight dark matter to a time-dependent variation in the times of arrival of radio pulses from pulsars. By searching data collected over more than a decade, the Parkes Pulsar Timing Array collaboration reports new and independent bounds on the density of ultralight bosonic dark matter in the vicinity of Earth.

Ultraviolet properties of N=8 supergravity at five loops

Zvi Bern, John Joseph Carrasco, Wei-Ming Chen, Alex Edison, Henrik Johansson, Julio Parra-Martinez, Radu Roiban, and Mao Zeng

Phys. Rev. D 98, 086021 (2018) - Published 19 October, 2018

The authors construct four-point scattering amplitudes at five loops for the maximally supersymmetric N=8 supergravity theory. They show that the critical number of spacetime dimensions where the theory starts to diverge is 24/5.

Equations of motion of self-gravitating N-body systems in the first post-Minkowskian approximation

Luc Blanchet and Athanassios S. Fokas

Phys. Rev. D 98, 084005 (2018) - Published 8 October, 2018

The post-Minkowskian expansion in general relativity (an expansion when the compactness parameter Gm/r/c2 of the source tends to zero) applied to the motion of N-body systems is revisited and compared to recently derived high-order post-Newtonian calculations (expansion when the slowness parameter v2/c2 tends to zero).

Relic neutrinos: Antineutrinos of primordial nucleosynthesis

Alexandre V. Ivanchik and Vlad Yu. Yurchenko

Phys. Rev. D 98, 081301(R) (2018) - Published 4 October, 2018

The first calculation of the spectrum of antineutrinos, resulting from neutron and tritium decays during nucleosynthesis, has been presented here. This spectrum is non thermal, in contrast with the thermal spectrum of the Cosmic neutrino background neutrinos, formed before nucleosynthesis. At energies larger than 102 eV, the non thermal flux exceeds that of the thermal flux and, if observed, will open up a window to non equilibrium processes just before, during and slightly after nucleosynthesis.

de Sitter swampland conjecture and the Higgs potential

Frederik Denef, Arthur Hebecker, and Timm Wrase

Phys. Rev. D 98, 086004 (2018) - Published 2 October, 2018

A recent conjecture implies that, in any quantum gravity theory, de-Sitter spacetime solutions do not exist, and thus it supports quintessence (described by a dynamical scalar field) models of cosmic acceleration. In this paper, the authors show that the conjecture is true only when Standard Model is coupled to quintessence in a very specific way.

Realization of impossible anomalies

Yu Nakayama

Phys. Rev. D 98, 085002 (2018) - Published 2 October, 2018

Anomalies in quantum field theories have to satisfy certain consistency conditions that stem from the underlying symmetries, which are particularly stringent for conformal theories. Nevertheless, once and again impossible anomalies occurred in explicit calculations. This paper investigates and clarifies the different violations of (implicit) assumptions that can lead to these impossible anomalies.

A guide to constraining effective field theories with machine learning

Johann Brehmer, Kyle Cranmer, Gilles Louppe, and Juan Pavez

Phys. Rev. D 98, 052004 (2018) - Published 12 September, 2018

A proposed machine-learning approach could speed up the analysis that underlies searches for new particles in high-energy collisions.

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