Highlights

Rescuing overabundant dark matter with a strongly first order phase transition in the dark sector

Peisi Huang, Anibal D. Medina, and Carlos E. M. Wagner

Phys. Rev. D 114, 055004 (2026) - Published 4 September, 2026

This paper studies dark matter in a spontaneously broken hidden U(1). The initial overabundant dark matter density is generated through the freeze-out mechanism. Because the subsequent first order phase transition becomes supercooled, the vacuum transition generates entropy, diluting the DM density to its current value. The MeV–GeV transition also produces nano-Hz gravitational waves potentially detectable by pulsar timing arrays such as NANOGrav.

Analytic force-free jet from disk-fed rotating black holes

Luis Villarin and Ian Vega

Phys. Rev. D 114, 043069 (2026) - Published 26 August, 2026

Rotating black holes are thought to drive some of the Universe’s most powerful outflows. A new analytic model finds that the energy carried away from a slowly rotating black hole is set mainly by its spin and magnetic flux at the horizon rather than the details of the surrounding accretion disk.

Precision lattice calculation of the hadronic contribution to the running of the electroweak gauge couplings

Alessandro Conigli, Dalibor Djukanovic, Georg von Hippel, Simon Kuberski, Harvey B. Meyer, Kohtaroh Miura, Konstantin Ottnad, Andreas Risch, and Hartmut Wittig

Phys. Rev. D 114, 034508 (2026) - Published 13 August, 2026

Photon calibration techniques for high resolution cryogenic detectors

W. Matava and M. R. Williams

Phys. Rev. D 114, 032007 (2026) - Published 12 August, 2026

Advanced cryogenic detectors, e.g. qubit-based sensors or Kinetic Inductance Detectors (KIDs), often offer resolutions larger than a single detected photon’s energy. The authors demonstrate that commonly used statistical methods for calibration of such detectors can introduce systematic biases, leading to inaccurate energy scale and resolution measurements. This stems from an assumption of independence between detector resolution and photon number, which breaks down once realistic effects like position-dependent phonon collection efficiency or Fano fluctuations are taken into account. Finally, a method of correcting for said effects is proposed.

Superconformal index and localizing higher derivative supergravity

Florian Gaar, Jerome P. Gauntlett, Jaeha Park, and James Sparks

Phys. Rev. D 114, L021904 (2026) - Published 22 July, 2026

Computing the exact (all corrections included) on-shell action for black holes remains an outstanding problem. Working within the framework of AdS/CFT and using a powerful technique, equivariant localization, the authors evaluate the on-shell action for D=5 AdS rotating, charged black holes when higher-derivative quantum corrections are turned on. They also find a precise match with the superconformal index in a Cardy-like limit of the dual N = 1 superconformal field theory in four dimensions.

When JIMWLK evolution really matters: The example of incoherent diffraction

T. Lappi and D. N. Triantafyllopoulos

Phys. Rev. D 114, 014036 (2026) - Published 17 July, 2026

The JIMWLK evolution equations describe high-energy scattering and the gluon saturation regime of QCD. As an infinite hierarchy of coupled, non-linear equations, approximations are required to make any phenomenological predictions. One widely-used approximation in which one assumes many quantities are Gaussian-distributed random variables, is known to be accurate for a simple class of initial conditions. The authors explicitly demonstrate that this Gaussian approximation fails to accurately describe full JIMWLK evolution beyond this simplest configuration, which may have significant implications for heavy ion collisions.

Electric accumulation of millicharged particles

Asher Berlin, Zachary Bogorad, Peter W. Graham, and Harikrishnan Ramani

Phys. Rev. D 114, 015016 (2026) - Published 10 July, 2026

Decades-old experiments have now been enlisted to set new bounds on the properties of a hypothetical particle that bears a tiny fraction of the electron’s charge.

How to identify the dead cone in the top-quark jet

Stefan Kluth, Wolfgang Ochs, and Redamy Perez-Ramos

Phys. Rev. D 113, 114048 (2026) - Published 26 June, 2026

The dead cone is the angular region about the momentum direction of a heavy quark in which QCD radiation is suppressed. While well-studied and even experimentally validated for bottom quarks, observing the dead cone for the most massive quark, the top, is exceedingly subtle because of its nearly immediate decay. The authors present a thorough study of the dead cone for top quarks, and establish techniques that can be used to isolate this intriguing effect from the physics of its decay.

Constraining neutrino-nucleon form factors with charged-current scattering at the Electron-Ion Collider

Guang Yang and Praveen Kumar

Phys. Rev. D 113, 116031 (2026) - Published 22 June, 2026

This study investigates the potential of electron–proton scattering at the Electron–Ion Collider to constrain the neutrino–nucleon axial form factor with unprecedented precision. By exploiting a free-proton target, the proposed measurements largely avoid nuclear-model uncertainties and offer a promising avenue for advancing the precision frontier of neutrino interaction physics.

Glimpse into the ultrametric spectrum

An Huang and Christian Baadsgaard Jepsen

Phys. Rev. D 113, 126021 (2026) - Published 15 June, 2026

p-adic string theory asks how much of string physics really depends on ordinary spacetime geometry. Quantum gravity may replace smooth short-distance geometry with more primitive or nonlocal structures; p-adic models provide a laboratory where the notion of distance is very different. This manuscript tests whether one of the most basic stringy signatures – the rapid high-energy growth of states – survives in such a setting. Simple tree models fail, but a natural p-adic spectrum on the unit circle reproduces the usual coarse string entropy growth, with log-periodic corrections. The result probes which aspects of string thermodynamics are geometric and which are more universal.

Neutrino decays as a natural explanation of the neutrino mass tension

Guillermo Franco Abellán

Phys. Rev. D 113, 123527 (2026) - Published 11 June, 2026

A disagreement over neutrino-mass estimates might be resolved by assuming that neutrinos decay into hypothetical massless particles.

Initial data of effective field theories of relativistic viscous fluids and gravity

Lorenzo Gavassino, Áron D. Kovács, and Harvey S. Reall

Phys. Rev. D 113, 124022 (2026) - Published 9 June, 2026

The authors propose a “reduction of order” approach to deal with unphysical degrees of freedom that arise in relativistic viscous hydrodynamics and in gravitational effective field theories, not at the equation of motion level but in the initial data, expressing the data for the unphysical variables in terms of those for the physical ones. They also show that the apparent loss of Lorentz invariance is not an issue if one works only in those frames where the assumptions of the effective field theory are manifestly valid.

Probing composite structure and spin-orbit coupling with GPDs in He4

Antonio Garcia Vallejo and Matthew D. Sievert

Phys. Rev. D 113, 114014 (2026) - Published 8 June, 2026

Generalized parton distributions (GPDs) encode information of all components of partonic momentum, potentially enabling three-dimensional spatial resolution of a nucleon’s substructure. The authors extend previous formulations of GPDs through a Wigner transform, and demonstrate its utility for the Helium-4 nucleus. The resulting master formula for GPDs manifests a novel spin-orbit coupling that did not appear in earlier implementations and implies additional composite structure.

Semianalytical approach to Lyα multiple-scattering in 21-cm signal simulations

Jordan Flitter, Julian B. Muñoz, and Andrei Mesinger

Phys. Rev. D 113, 103552 (2026) - Published 29 May, 2026

Efficient treatment of Lyman-alpha photon multiple scattering is shown to be possible through semi-analytic treatment of the average distance that a photon traverses prior to absorption. By incorporating this scheme into the 21cmFAST code, the authors show that Lyman-alpha multiple scattering can cause significant differences in the predicted high-redshift 21cm power spectrum.

N-body 2PN Hamiltonian and numerical integration of the equations of motion

Felix M. Heinze, Gerhard Schäfer, and Bernd Brügmann

Phys. Rev. D 113, 104066 (2026) - Published 28 May, 2026

Although even the 2-body problem in general relativity (GR) has not been solved exactly, the so-called post-Newtonian (PN) expansion provides a valuable approximation scheme adequate for many physical situations. In the present paper, the N-body Hamiltonian is analytically evaluated (up to a single integral) at 2PN precision. This level of precision had previously been achieved only for the 3-body problem a long time ago, marking a significant step forward.

Divergence and resummation of the moment expansion for an ultrarelativistic gas in Bjorken flow

Caio V. P. de Brito, David Wagner, Gabriel S. Denicol, and Dirk H. Rischke

Phys. Rev. D 113, 096007 (2026) - Published 8 May, 2026

A standard lore in relativistic fluid dynamics is that the widely-used moment expansion for the single particle distribution function converges. The authors challenge this assumption, demonstrating in a simple example that the moment expansion does not produce decreasing multipole coefficients of a series of orthogonal polynomials. This divergence can nevertheless be tamed through Borel transformation and Padé approximation, producing stable predictions.

Dark Energy Survey Year 3: Blue shear

J. McCullough et al. (DES Collaboration)

Phys. Rev. D 113, 103509 (2026) - Published 6 May, 2026

The authors use the Dark Energy Survey Year 3 galaxy-shear catalog to demonstrate that the challenge of intrinsic alignment (IA) modeling can be effectively circumvented when using a subsample of blue, star-forming galaxies, which are virtually devoid of IA effects. In particular, goodness of fit and agreement with Planck results improve both for Ωₘ and 𝑆₈ .

Moments of parton distribution functions of the pion from lattice QCD using gradient flow

Anthony Francis, Patrick Fritzsch, Rohith Karur, Jangho Kim, Giovanni Pederiva, Dimitra A. Pefkou, Antonio Rago, Andrea Shindler, André Walker-Loud, and Savvas Zafeiropoulos

Phys. Rev. D 113, 074520 (2026) - Published 29 April, 2026

A gradient-flow-based lattice QCD method overcomes the long standing hinderance in computing higher Mellin moments of parton distribution functions due to power-divergent operator mixings.

Toward a fully automated differential NNLOEW generator for lepton colliders

Alan Price and Frank Krauss

Phys. Rev. D 113, 073008 (2026) - Published 27 April, 2026

Especially at proposed future lepton colliders, the description of electroweak radiation at high perturbative accuracy will be critical to achieve the high precision goals for sensitivity to rare Standard Model processes or new physics. The authors present an algorithm based on the Yennie-Frautschi-Suura theorem and demonstrate the first process-independent inclusion of electroweak corrections at next-to-next-to-leading order in fully exclusive events. A public version of this method will be available in a future release of the Sherpa event generator.

DECADE+DES Y3 weak lensing mass map: A 13,000deg2 view of cosmic structure from 270 million galaxies

M. Gatti et al.

Phys. Rev. D 113, L081303 (2026) - Published 23 April, 2026

The authors present the largest (270 million galaxies) galaxy weak-lensing mass map to date from combined analysis of Dark Energy Camera All Data Everywhere (DECADE) and Dark Energy Survey Year-3 data. They further showcase its potential for cosmological applications by detecting cosmic filaments directly from the mass map.

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