MICROSCOPE's constraint on a short-range fifth force
Joel Berg\'e, Martin Pernot-Borr\`as, Jean-Philippe Uzan, Philippe, Brax, Ratana Chhun, Gilles M\'etris, Manuel Rodrigues, Pierre Touboul

TL;DR
The paper uses MICROSCOPE data to attempt constraining a short-range fifth force via stiffness measurements, but experimental uncertainties limit the strength of the resulting constraints.
Contribution
First analysis of MICROSCOPE data to set limits on short-range Yukawa deviations from Newtonian gravity using stiffness measurements.
Findings
Measurement uncertainties dominated by gold wire effects
Detected unaccounted stiffness related to electric configuration
Constraints on Yukawa potential are weak due to experimental limitations
Abstract
The MICROSCOPE experiment was designed to test the weak equivalence principle in space, by comparing the low-frequency dynamics of cylindrical "free-falling" test masses controlled by electrostatic forces. We use data taken during technical sessions aimed at estimating the electrostatic stiffness of MICROSCOPE's sensors to constrain a short-range Yukawa deviation from Newtonian gravity. We take advantage of the fact that in the limit of small displacements, the gravitational interaction (both Newtonian and Yukawa-like) between nested cylinders is linear, and thus simply characterised by a stiffness. By measuring the total stiffness of the forces acting on a test mass as it moves, and comparing it with the theoretical electrostatic stiffness (expected to dominate), it is a priori possible to infer constraints on the Yukawa potential parameters. However, we find that measurement…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Experimental and Theoretical Physics Studies · Quantum and Classical Electrodynamics
