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Theoretical physicists working at a blackboard collaboration pod in the Beecroft building.
Credit: Jack Hobhouse

Professor Joseph Conlon

Professor of Theoretical Physics

Research theme

  • Particle astrophysics & cosmology
  • Fundamental particles and interactions
  • Fields, strings, and quantum dynamics

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Particle theory
Joseph.Conlon@physics.ox.ac.uk
Telephone: 01865 (2)73608
Rudolf Peierls Centre for Theoretical Physics, room 60.10
My personal webpage
  • About
  • Publications

Loop corrections to Delta N_eff in large volume models

(2013)

Authors:

Stephen Angus, Joseph P Conlon, Ulrich Haisch, Andrew J Powell
More details from the publisher

Searching for a 0.1-1 keV Cosmic Axion Background

ArXiv 1305.3603 (2013)

Authors:

Joseph P Conlon, MC David Marsh

Abstract:

Primordial decays of string theory moduli at z \sim 10^{12} naturally generate a dark radiation Cosmic Axion Background (CAB) with 0.1 - 1 keV energies. This CAB can be detected through axion-photon conversion in astrophysical magnetic fields to give quasi-thermal excesses in the extreme ultraviolet and soft X-ray bands. Substantial and observable luminosities may be generated even for axion-photon couplings \ll 10^{-11} GeV^{-1}. We propose that axion-photon conversion may explain the observed excess emission of soft X-rays from galaxy clusters, and may also contribute to the diffuse unresolved cosmic X-ray background. We list a number of correlated predictions of the scenario.
Details from ArXiV
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Searching for a 0.1-1 keV Cosmic Axion Background

(2013)

Authors:

Joseph P Conlon, MC David Marsh
More details from the publisher

The Cosmophenomenology of Axionic Dark Radiation

ArXiv 1304.1804 (2013)

Authors:

Joseph P Conlon, MC David Marsh

Abstract:

Relativistic axions are good candidates for the dark radiation for which there are mounting observational hints. The primordial decays of heavy fields produce axions which are ultra-energetic compared to thermalised matter and inelastic axion-matter scattering can occur with $E_{CoM} \gg T_{\gamma}$, thus accessing many interesting processes which are otherwise kinematically forbidden in standard cosmology. Axion-photon scattering into quarks and leptons during BBN affects the light element abundances, and bounds on overproduction of $^4$He constrain a combination of the axion decay constant and the reheating temperature. For supersymmetric models, axion scattering into visible sector superpartners can give direct non-thermal production of dark matter at $T_{\gamma} \ll T_{freezeout}$. Most axions --- or any other dark radiation candidate from modulus decay --- still linger today as a Cosmic Axion Background with $E_{axion} \sim \mathcal{O}(100) eV$, and a flux of $\sim 10^6 cm^{-2} s^{-1}$.
Details from ArXiV
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The Cosmophenomenology of Axionic Dark Radiation

(2013)

Authors:

Joseph P Conlon, MC David Marsh
More details from the publisher

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