In this work, we propose polarimetry experiments to search for low-mass (sub-eV) bosonic field dark matter, including axions and axionlike particles. We show that a polarimetry configuration consisting of a thick birefringent solid inside a Fabry-Pérot cavity is exceptionally sensitive to scalar field dark matter, which may cause oscillatory variations in the solid's thickness and refractive index. In addition, we show that a reconfiguration of this polarimetry experiment, in which two quarter-wave plates are placed inside the Fabry-Pérot cavity instead of a thick birefringent solid, is very sensitive to axionlike particles. We investigate the possibility of using cross-correlation of twin polarimeters to increase the sensitivity of the experiment, which in turn could allow us to explore unexplored parts of the parameter space and potentially detect a signal in either dark matter scenario.

Ejlli, A., Vermeulen, S. ., Schwartz, E., Aiello, L., Grote, H. (2023). Probing dark matter with polarimetry techniques. PHYSICAL REVIEW D, 107(8) [10.1103/physrevd.107.083035].

Probing dark matter with polarimetry techniques

Aiello, L.;
2023-01-01

Abstract

In this work, we propose polarimetry experiments to search for low-mass (sub-eV) bosonic field dark matter, including axions and axionlike particles. We show that a polarimetry configuration consisting of a thick birefringent solid inside a Fabry-Pérot cavity is exceptionally sensitive to scalar field dark matter, which may cause oscillatory variations in the solid's thickness and refractive index. In addition, we show that a reconfiguration of this polarimetry experiment, in which two quarter-wave plates are placed inside the Fabry-Pérot cavity instead of a thick birefringent solid, is very sensitive to axionlike particles. We investigate the possibility of using cross-correlation of twin polarimeters to increase the sensitivity of the experiment, which in turn could allow us to explore unexplored parts of the parameter space and potentially detect a signal in either dark matter scenario.
2023
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore PHYS-01/A - Fisica sperimentale delle interazioni fondamentali e applicazioni
English
Con Impact Factor ISI
Dark matter; Particle dark matter; Gravitational wave detectors
Ejlli, A., Vermeulen, S. ., Schwartz, E., Aiello, L., Grote, H. (2023). Probing dark matter with polarimetry techniques. PHYSICAL REVIEW D, 107(8) [10.1103/physrevd.107.083035].
Ejlli, A; Vermeulen, S ; Schwartz, E; Aiello, L; Grote, H
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/393208
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