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Search for QCD Coupled Axion Dark Matter with Data from the MICROSCOPE Space Experiment
Jordan Gué1, Peter Wolf2, Aurélien Hees2
1Institut de Física d'Altes Energies (IFAE), The Barcelona Institute of Science and Technology, Campus UAB, 08193 Bellaterra (Barcelona), Spain.
This study searched for axion dark matter using MICROSCOPE data. No signal was found, setting new upper limits on axion-gluon coupling for specific axion masses.
Area of Science:
- Cosmology and astrophysics
- Particle physics
- Fundamental physics
Background:
- Axion dark matter models predict differential acceleration between test masses.
- The equivalence principle is a fundamental concept in physics.
- The MICROSCOPE mission tested the equivalence principle with high precision.
Purpose of the Study:
- To search for signals of axion dark matter using the MICROSCOPE experiment's final data.
- To constrain the axion-gluon coupling constant.
- To improve existing laboratory bounds on axion properties.
Main Methods:
- Utilized final released data from the MICROSCOPE space mission.
- Performed a search for a non-zero differential acceleration between test masses of different compositions.
- Applied analysis techniques to set upper limits on the axion-gluon coupling.
Main Results:
- No positive signal consistent with axion dark matter was detected.
- Established new upper limits on the axion-gluon coupling.
- Improved existing laboratory bounds by up to two orders of magnitude for specific axion masses.
Conclusions:
- The MICROSCOPE experiment places stringent constraints on axion dark matter models.
- The results exclude a significant portion of the parameter space for axion-gluon coupling.
- Further investigations with enhanced sensitivity may be required to detect potential axion dark matter signals.
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