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

John March-Russell

Professor of Theoretical Physics and Senior Research Fellow, New College, Oxford; Perimeter Institute Distinguished Visiting Research Chair

Research theme

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

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • AION/Magis
  • Particle theory
John.March-Russell@physics.ox.ac.uk
Telephone: 01865 (2)73630
Rudolf Peierls Centre for Theoretical Physics, room 60.05
  • About
  • Publications

Dark Matter Attenuation Effects: Sensitivity Ceilings for Spin-Dependent and Spin-Independent Interactions

(2025)

Authors:

QUEST-DMC Collaboration, :, N Darvishi, J Smirnov, S Autti, L Bloomfield, A Casey, N Eng, P Franchini, RP Haley, PJ Heikkinen, A Jennings, A Kemp, E Leason, J March-Russell, A Mayer, J Monroe, D Munstermann, MT Noble, JR Prance, X Rojas, T Salmon, J Saunders, R Smith, MD Thompson, A Thomson, A Ting, V Tsepelin, SM West, L Whitehead, DE Zmeev
More details from the publisher
Details from ArXiV

Evaporating Primordial Black Holes, the String Axiverse, and Hot Dark Radiation

Physical Review Letters American Physical Society (APS) 133:26 (2024) 261003

Authors:

Marco Calzà, John March-Russell, João G Rosa
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De Sitter space constraints on brane tensions and couplings

(2024)

Authors:

Saquib Hassan, Georges Obied, John March-Russell
More details from the publisher
Details from ArXiV

QUEST-DMC: Background Modelling and Resulting Heat Deposit for a Superfluid Helium-3 Bolometer

Journal of Low Temperature Physics Springer 215:5-6 (2024) 465-476

Authors:

S Autti, A Casey, N Eng, N Darvishi, P Franchini, RP Haley, PJ Heikkinen, A Kemp, E Leason, LV Levitin, J Monroe, J March-Russel, MT Noble, JR Prance, X Rojas, T Salmon, J Saunders, R Smith, MD Thompson, V Tsepelin, SM West, L Whitehead, K Zhang, DE Zmeev

Abstract:

We report the results of radioactivity assays and heat leak calculations for a range of common cryogenic materials, considered for use in the QUEST-DMC superfluid 3He dark matter detector. The bolometer, instrumented with nanomechanical resonators, will be sensitive to energy deposits from dark matter interactions. Events from radioactive decays and cosmic rays constitute a significant background and must be precisely modelled, using a combination of material screening and Monte Carlo simulations. However, the results presented here are of wider interest for experiments and quantum devices sensitive to minute heat leaks and spurious events, thus we present heat leak per unit mass or surface area for every material studied. This can inform material choices for other experiments, especially if underground operation is considered – where the radiogenic backgrounds will dominate even at shallow depths.
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QUEST-DMC superfluid 3 He detector for sub-GeV dark matter

The European Physical Journal C SpringerOpen 84:3 (2024) 248

Authors:

S Autti, A Casey, N Eng, N Darvishi, P Franchini, RP Haley, PJ Heikkinen, A Jennings, A Kemp, E Leason, LV Levitin, J Monroe, J March-Russel, MT Noble, JR Prance, X Rojas, T Salmon, J Saunders, R Smith, MD Thompson, V Tsepelin, SM West, L Whitehead, VV Zavjalov

Abstract:

The focus of dark matter searches to date has been on Weakly Interacting Massive Particles (WIMPs) in the GeV/c2-TeV/c2 mass range. The direct, indirect and collider searches in this mass range have been extensive but ultimately unsuccessful, providing a strong motivation for widening the search outside this range. Here we describe a new concept for a dark matter experiment, employing superfluid 3He as a detector for dark matter that is close to the mass of the proton, of order 1 GeV/c2. The QUEST-DMC detector concept is based on quasiparticle detection in a bolometer cell by a nanomechanical resonator. In this paper we develop the energy measurement methodology and detector response model, simulate candidate dark matter signals and expected background interactions, and calculate the sensitivity of such a detector. We project that such a detector can reach sub-eV nuclear recoil energy threshold, opening up new windows on the parameter space of both spin-dependent and spin-independent interactions of light dark matter candidates.
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