arXiv · 1910.09973
Probing Virtual Axion-Like Particles by Precision Phase Measurements
Abstract
We propose an experiment for detecting Axion-Like Particles (ALPs) based on the axion-photon interaction in the presence of a non-uniform magnetic field. The impact of virtual ALPs on the polarization of the photons inside a cavity is studied and a detection scheme is proposed. We find that the cavity normal modes are dispersed differently owing to their coupling to the ALPs in the presence of a background magnetic field. This birefringence, in turn, can be observed as a phase difference between the cavity polarization modes. The signal is considerably enhanced for a squeezed light source. We argue that the amplified signal allows for exclusion of a range of axion mass $6\times10^{-4}\text{eV}\lesssim m_{a}\lesssim 6\times10^{-3}\text{eV}$ even at very small axion-photon coupling constant with the potential to reach sensitivity to the QCD axion. Our scheme allows for the exclusion of a range of axion masses that has not yet been covered by other experimental techniques.
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Moslem Zarei, Soroush Shakeri, Mohammad Sharifian, Mehdi Abdi, David J. E. Marsh, Sabino Matarrese. 2019-10-22. Probing Virtual Axion-Like Particles by Precision Phase Measurements. https://doi.org/10.1088/1475-7516%2F2022%2F06%2F012
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