Highlights

Null tests from angular distributions in DP1P2l+l, l=e, μ decays on and off peak

Stefan de Boer and Gudrun Hiller

Phys. Rev. D 98, 035041 (2018) - Published 28 August, 2018

Rare decays of D mesons may provide insight into physics beyond the Standard Model, such as tests of CP violation, lepton flavor violation, and lepton universality. In this paper, the authors develop angular observables that can function as null-tests of the Standard Model based on GIM-cancellation and parity conservation.

Dark Energy Survey Year 1 results: Cosmological constraints from cosmic shear

M. A. Troxel et al. (Dark Energy Survey Collaboration)

Phys. Rev. D 98, 043528 (2018) - Published 27 August, 2018

Analyzing its first year of data, the Dark Energy Survey has demonstrated that weak lensing can probe cosmological parameters with a precision comparable to cosmic microwave background observations.

Dark Energy Survey year 1 results: Cosmological constraints from galaxy clustering and weak lensing

T. M. C. Abbott et al. (Dark Energy Survey Collaboration)

Phys. Rev. D 98, 043526 (2018) - Published 27 August, 2018

Analyzing its first year of data, the Dark Energy Survey has demonstrated that weak lensing can probe cosmological parameters with a precision comparable to cosmic microwave background observations.

Dark Energy Survey year 1 results: Galaxy clustering for combined probes

J. Elvin-Poole et al. (Dark Energy Survey Collaboration)

Phys. Rev. D 98, 042006 (2018) - Published 27 August, 2018

Analyzing its first year of data, the Dark Energy Survey has demonstrated that weak lensing can probe cosmological parameters with a precision comparable to cosmic microwave background observations.

Dark Energy Survey year 1 results: Galaxy-galaxy lensing

J. Prat et al. (Dark Energy Survey Collaboration)

Phys. Rev. D 98, 042005 (2018) - Published 27 August, 2018

Analyzing its first year of data, the Dark Energy Survey has demonstrated that weak lensing can probe cosmological parameters with a precision comparable to cosmic microwave background observations.

New constraints on oscillation parameters from νe appearance and νμ disappearance in the NOvA experiment

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

Phys. Rev. D 98, 032012 (2018) - Published 24 August, 2018

The NOvA Collaboration presents new results on muon- to electron-neutrino oscillations leading to new constraints on neutrino oscillation parameters compatible with other experiments. The inverted mass hierarchy is disfavored by the new results.

Tests of the standard model in BDν, BD*ν and BcJ/ψν

Thomas D. Cohen, Henry Lamm, and Richard F. Lebed

Phys. Rev. D 98, 034022 (2018) - Published 23 August, 2018

Prompted by the unresolved anomalies in semileptonic B meson decays, the authors construct observables sensitive to lepton universality violation. Starting from the fully differential decay rate, one can integrate with carefully chosen weight functions to produce ratios that are independent of hadronic form factors.

Measuring CP violation in bcτν¯τ using excited charm mesons

Daniel Aloni, Yuval Grossman, and Abner Soffer

Phys. Rev. D 98, 035022 (2018) - Published 16 August, 2018

Persistent anomalies in B decays may indicate the presence of new physics. If so, this new physics may generically induce non-Standard-Model CP violation. The authors construct a new CP-violating observable using interference between intermediate resonances that can be measured at high-luminosity B facilities like LHCb and Belle II.

Renormalization group flow in field theories with quenched disorder

Ofer Aharony and Vladimir Narovlansky

Phys. Rev. D 98, 045012 (2018) - Published 15 August, 2018

Renormalization group analysis is applied to uncover several general features of quantum field theories with disorder, including the existence of a new critical exponent.

Cogenesis of LIGO primordial black holes and dark matter

Fuminori Hasegawa and Masahiro Kawasaki

Phys. Rev. D 98, 043514 (2018) - Published 14 August, 2018

By connecting primordial back holes (PBHs), baryon asymmetry and solitons (Qballs) in a novel way, the authors propose a scenario that simultaneously explains the massive (~ 30 solar masses) black holes observed by LIGO and the observed dark matter abundance. The generic mechanism involved is conceivable and most importantly, by seeding the PBHs by baryon number perturbations one avoids stringent cosmological/CMB constraints for PBH masses; dark matter is mostly given by Q-balls.

Symplectic realization of electric charge in fields of monopole distributions

Vladislav G. Kupriyanov and Richard J. Szabo

Phys. Rev. D 98, 045005 (2018) - Published 7 August, 2018

The authors discuss in detail classical and quantum dynamics of electric charges in the presence of magnetic monopole density distributions. Standard methods fail in dealing with a continuum magnetic charge distribution but the authors solve this longstanding difficulty with a special mathematical formalism, akin to dissipative systems.

General Poincaré gauge theory: Hamiltonian structure and particle spectrum

M. Blagojević and B. Cvetković

Phys. Rev. D 98, 024014 (2018) - Published 9 July, 2018

This paper provides a comprehensive study of general Poincare gauge theories of gravity, of both even and odd parity, investigating its Hamiltonian structure, obtaining the mass eigenvalues of its linearized modes, identifying the associated positivity and reality conditions and establishing that not all the modes are dynamic. This is a rather detailed and significant study of an alternative theory of gravity.

Spectral function for overoccupied gluodynamics from real-time lattice simulations

K. Boguslavski, A. Kurkela, T. Lappi, and J. Peuron

Phys. Rev. D 98, 014006 (2018) - Published 6 July, 2018

The authors study a system of overoccupied gluons numerically, extract spectral and statistical correlation functions at unequal times, and show that the system is dominated by quasiparticles of relatively narrow width.

Mode truncations and scattering in strong fields

Tom Heinzl, Anton Ilderton, and Daniel Seipt

Phys. Rev. D 98, 016002 (2018) - Published 3 July, 2018

This article presents the quantum mechanical interaction between a charged boson field and a single mode of the photon field, extending the existing external field approximation to include a consistent treatment of photon scattering, emission, and absorption and showing how the prescriptions adopted in the external field approximation emerge from quantum field theory.

Rotor spectra and Berry phases in the chiral limit of QCD on a torus

N. D. Vlasii and U.-J. Wiese

Phys. Rev. D 97, 114029 (2018) - Published 28 June, 2018

Finite volume spectra of mesons in sectors with baryon number zero and one and different isospin, computed in the chiral limit in chiral perturbation theory, shed light on the dynamics of chiral symmetry breaking in QCD. A Berry gauge field with an intriguing connection to Yang-Mills-Chern-Simons theory plays an important role in the analysis.

Color glass condensate formalism, Balitsky-JIMWLK evolution, and Lipatov’s high energy effective action

Martin Hentschinski

Phys. Rev. D 97, 114027 (2018) - Published 26 June, 2018

For high-energy physics at small ‘x’, i.e. without relatively hard processes, both Lipatov’s effective action and the Color-Glass Condensate formalism have been developed. In this paper the authors find a link between the two, demonstrating that quark and gluon propagators used in the latter theory can be derived from Lipatov’s approach. They also confirm that the Reggeized gluon may be viewed as the logarithm of an adjoint Wilson line.

Muon g2 and α(MZ2): A new data-based analysis

Alexander Keshavarzi, Daisuke Nomura, and Thomas Teubner

Phys. Rev. D 97, 114025 (2018) - Published 25 June, 2018

A theoretical reevaluation of the muon’s magnetic moment gives the highest precision prediction so far, while doubling down on a discrepancy with experiment.

Foundations of the self-force problem in arbitrary dimensions

Abraham I. Harte, Peter Taylor, and Éanna É. Flanagan

Phys. Rev. D 97, 124053 (2018) - Published 21 June, 2018

This paper provides a concrete means of calculating self-forces on bodies in an odd number of dimensions, the technique being anchored to an axiomatic basis, which provides a unifying framework for even and odd dimensions. It also provides a number of explicit self-force expressions in Minkowski space-time and is arguably a significant contribution to the field.

Global simulations of strongly magnetized remnant massive neutron stars formed in binary neutron star mergers

Kenta Kiuchi, Koutarou Kyutoku, Yuichiro Sekiguchi, and Masaru Shibata

Phys. Rev. D 97, 124039 (2018) - Published 15 June, 2018

This article reports on the results of novel, extremely high-resolution simulations of the general relativistic magnetohydrodynamics (MHD) of neutron star mergers, focussing on angular momentum transport due to the MHD turbulence. The authors show that the Kelvin-Helmholtz instability at merger amplifies the magnetic energy to 1% of the thermal energy.

Colored dark matter

Valerio De Luca, Andrea Mitridate, Michele Redi, Juri Smirnov, and Alessandro Strumia

Phys. Rev. D 97, 115024 (2018) - Published 14 June, 2018

Dark matter is usually assumed to couple to the Standard Model only weakly. However, the authors propose a simple model of heavy new fermions which carry strong color charge and form stable bound states. These bound states can act as dark matter and appear consistent with current cosmological and experimental limits.

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