Highlights

Exploring the SMEFT at dimension eight with Drell-Yan transverse momentum measurements

Radja Boughezal, Yingsheng Huang, and Frank Petriello

Phys. Rev. D 106, 036020 (2022) - Published 23 August, 2022

Effective field theories (EFTs) are used to parameterize searches for new physics in a largely model-independent way. Here, the authors study Drell-Yan processes at the LHC including terms up to dimension 8 in the EFT expansion. They find that these higher-dimension operators can be probed in the future and are potentially important in distinguishing different models.

Quantum chaos and the complexity of spread of states

Vijay Balasubramanian, Pawel Caputa, Javier M. Magan, and Qingyue Wu

Phys. Rev. D 106, 046007 (2022) - Published 22 August, 2022

Complexity plays an important role in the study of black holes in quantum gravity, and of interacting many-body systems in condensed matter physics. The authors propose a definition of quantum state complexity, which agrees with earlier definitions under certain conditions. They compute the complexity in various models and show physically reasonable behaviors which can be connected with quantum chaos.

Exact Schur index in closed form

Yiwen Pan and Wolfger Peelaers

Phys. Rev. D 106, 045017 (2022) - Published 17 August, 2022

The superconformal index encodes important information about the protected spectrum of a superconformal theory (SCFT), with the special case of the Schur Index counting objects with enhanced supersymmetry. The authors provide for the first time an explicit formula for this index for a large class of important SCFTs by integrating numerous (almost) elliptical integrals. This allows them to provide several applications like the computation of the index for non-Lagrangian theories through dualities, explicit properties of Vertex Operator Algebras, etc.

Early dark sector, the Hubble tension, and the swampland

Evan McDonough, Meng-Xiang Lin, J. Colin Hill, Wayne Hu, and Shengjia Zhou

Phys. Rev. D 106, 043525 (2022) - Published 17 August, 2022

This work investigates the interplay of the Hubble tension, Early Dark Energy (EDE), and the swampland distance conjecture. The latter predicts a tower of light states for large field excursions, while EDE is a scalar field model to alleviate the Hubble tension which indeed requires Planckian field excursions, but also leads to tensions with large-scale structure (LSS) probes. The authors consider exponentially EDE-dependent masses of dark matter with the distance conjecture constant, which supposedly is a positive constant of O(1), as a free parameter. Using a large set of different catalogs of experiments, fitting also LSS data, a mild tension with the swampland distance conjecture is observed that constrains the constant to be significantly less than one. Modifications of the heuristic EDE potential may resolve this conflict.

Well-posed UV completion for simulating scalar Galileons

Mary Gerhardinger, John T. Giblin, Jr., Andrew J. Tolley, and Mark Trodden

Phys. Rev. D 106, 043522 (2022) - Published 15 August, 2022

The authors provide innovative approaches to improve numerical stability in simulations of the nonlinear Galileon theory, an effective field theory exhibiting the Vainshtein screening mechanism, which is incorporated into many extensions to Einstein gravity. They achieve an UV completion of the theory, numerically, to this end.

New binary black hole mergers in the LIGO-Virgo O3a data

Seth Olsen, Tejaswi Venumadhav, Jonathan Mushkin, Javier Roulet, Barak Zackay, and Matias Zaldarriaga

Phys. Rev. D 106, 043009 (2022) - Published 9 August, 2022

The present paper applies a refined detection pipeline to publicly available LIGO-Virgo data from the first half of the third observing run (O3a) to identify new binary black hole (BBH) mergers. The study adds ten new BBH mergers to existing catalogs and provides further evidence for the significance level of previously identified events. The new events display interesting new features that include unexplored ranges of the effective spin and mass ratio, they challenge aspects of stellar collapse models, and have implications for BBH formation channels and black hole mass gaps.

Phonon-mediated Migdal effect in semiconductor detectors

Zheng-Liang Liang, Chongjie Mo, Fawei Zheng, and Ping Zhang

Phys. Rev. D 106, 043004 (2022) - Published 3 August, 2022

This paper presents a novel treatment of the dark matter induced Migdal effect in solids, providing a full theoretical description of it as a phonon mediated process. This allows the authors to make reliable predictions for dark matter masses below 50 MeV, where the previously used approximation of assuming the nuclei to be freely recoiling breaks down.

Improved measurement of neutrino oscillation parameters by the NOvA experiment

M. A. Acero et al. (The NOvA Collaboration)

Phys. Rev. D 106, 032004 (2022) - Published 3 August, 2022

Long-baseline neutrino experiments are paving the way for the solution of two outstanding puzzles in neutrino physics—mass ordering and charge-parity violation.

Flat space analog for the quantum origin of structure

Daniel Green and Yiwen Huang

Phys. Rev. D 106, 023531 (2022) - Published 28 July, 2022

The authors address the question of if the structure of the universe originates from quantum fluctuation, as assumed in inflation, or if classical, thermal fluctuations could lead to the same outcome. They study their previously proposed test (the analytical structure of particular cosmological correlation functions) in flat space where several aspects and details are much better defined. They show that their criterion is completely general and observable and how it is seen in Unruh - de Witt detectors.

Phonon background from gamma rays in sub-GeV dark matter detectors

Kim V. Berghaus, Rouven Essig, Yonit Hochberg, Yutaro Shoji, and Mukul Sholapurkar

Phys. Rev. D 106, 023026 (2022) - Published 22 July, 2022

Semiconductor based searches for dark matter are a promising route to look for low-mass (sub-GeV) particles, but they present challenges due to their sensitivity. This article analyzes the background from radiogenic photons, which can leave a phonon signal in the detector. The authors find this is a significant effect, which will require active veto strategies to ameliorate.

Ionization of gravitational atoms

Daniel Baumann, Gianfranco Bertone, John Stout, and Giovanni Maria Tomaselli

Phys. Rev. D 105, 115036 (2022) - Published 27 June, 2022

Distinctive features of gravitational-wave signals from black hole mergers could reveal the existence of long-sought ultralight bosons.

Noninvertible duality defects in 3+1 dimensions

Yichul Choi, Clay Córdova, Po-Shen Hsin, Ho Tat Lam, and Shu-Heng Shao

Phys. Rev. D 105, 125016 (2022) - Published 22 June, 2022

A novel kind of generalized global symmetries is uncovered in a large class of familiar 3+1-dimensional gauge theories, including the free Maxwell theory and Yang-Mills gauge theories. These new symmetries, known as the non-invertible global symmetries, do not have inverses and thus go beyond the traditional paradigm of (anti-)unitary transformations. They are implemented by topological duality defects, generalizing the Kramers-Wannier duality defects in 1+1 dimensions. Remarkably, the existence of certain kinds of duality defects is intrinsically incompatible with a trivially gapped phase and hence gives new constraints on renormalization group flows.

Inspiraling compact objects with generic deformations

Nicholas Loutrel, Richard Brito, Andrea Maselli, and Paolo Pani

Phys. Rev. D 105, 124050 (2022) - Published 21 June, 2022

Gravitating bodies are typically deformable and deviate from spherical symmetry and even axisymmetry. These deviations are encoded in the body’s so-called mass and current multipole moments. This paper studies leading corrections to binary dynamics when the compact objects involved have arbitrary mass quadrupole moments. These corrections are important in modeling waveforms and interpreting gravitational wave data.

Search for an anomalous excess of inclusive charged-current νe interactions in the MicroBooNE experiment using Wire-Cell reconstruction

P. Abratenko et al. (MicroBooNE Collaboration1)

Phys. Rev. D 105, 112005 (2022) - Published 13 June, 2022

New neutrino-oscillation data show no sign of an anomalous signal seen in previous studies, but the analyses can’t yet fully rule out its presence.

Search for an anomalous excess of charged-current νe interactions without pions in the final state with the MicroBooNE experiment

P. Abratenko et al. (The MicroBooNE Collaboration)

Phys. Rev. D 105, 112004 (2022) - Published 13 June, 2022

New neutrino-oscillation data show no sign of an anomalous signal seen in previous studies, but the analyses can’t yet fully rule out its presence.

Search for an anomalous excess of charged-current quasielastic νe interactions with the MicroBooNE experiment using Deep-Learning-based reconstruction

P. Abratenko et al. (The MicroBooNE Collaboration)

Phys. Rev. D 105, 112003 (2022) - Published 13 June, 2022

New neutrino-oscillation data show no sign of an anomalous signal seen in previous studies, but the analyses can’t yet fully rule out its presence.

Turning black holes and D-branes inside out of their photon spheres

Massimo Bianchi and Giorgio Di Russo

Phys. Rev. D 105, 126007 (2022) - Published 2 June, 2022

The authors study a peculiar symmetry of many black hole systems (conformal inversion), which changes the physics at infinity with the one at the horizon while keeping the photon sphere fixed. The latter is the region of strong gravitation close to the horizon where light can travel in circles. It is shown that the scattering angle for massless (or very special massive) probes coming from infinity coincides with the angle of probes of the same energy and angular momentum under which they are falling into the horizon starting from the photon sphere.

Evaluation of the three-flavor quark-disconnected contribution to the muon anomalous magnetic moment from experimental data

Diogo Boito, Maarten Golterman, Kim Maltman, and Santiago Peris

Phys. Rev. D 105, 093003 (2022) - Published 16 May, 2022

Theory predictions for g-2, the muon’s anomalous magnetic moment, can be made with dispersive methods or with lattice calculations, but some current estimates show tension between the two. This becomes especially important in view of the apparent discrepancy with the experimental value. The authors of this Suggestion show how a subset of contributions to the hadronic vacuum polarization, the leading source of theory uncertainty, can be related to physical observables. The results can help isolate the disagreement between the differing calculations.

Asymptotic safety guaranteed for strongly coupled gauge theories

Andrew D. Bond and Daniel F. Litim

Phys. Rev. D 105, 105005 (2022) - Published 11 May, 2022

This paper demonstrates that interacting UV fixed points exist at strong coupling and away from the large-N Veneziano limit. The renormalization group and exact results from supersymmetry are employed to provide instances involving semi-simple supersymmetric gauge theories with chiral matter and superpotential interactions.

Fast neutrino flavor instability and neutrino flavor lepton number crossings

Taiki Morinaga

Phys. Rev. D 105, L101301 (2022) - Published 9 May, 2022

In astrophysical environments with a large number of neutrinos, such as supernovae, neutrinos exhibit nonlinear flavor oscillations due to interactions with the dense neutrino background. Characterizing the features of these flavor conversions is a difficult problem. The present paper by Taiki Morinaga makes a significant contribution by establishing rigorously the sufficient and necessary conditions under which so-called fast neutrino flavor instabilities arise.

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