Searching for Dark Photons with Existing Haloscope Data
arXiv:2104.09334 · doi:10.1103/PhysRevD.104.092016
Abstract
The dark (or hidden) photon is a massive U(1) gauge boson theorized as a dark force mediator and as a dark matter candidate. Dark photons can be detected with axion cavity haloscopes by probing for a power excess caused by the dark photon's kinetic mixing with Standard Model photons. Haloscope axion exclusion limits may therefore be converted into competitive dark photon parameter limits via the calculation of a corresponding dark photon to photon coupling factor. This calculation allows for an improvement in sensitivity of around four orders of magnitude relative to other dark photon exclusions and may be attained using existing data. We present how one converts haloscope axion search limits and a summary of relevant experimental parameters from published searches. In addition, we have included the code that can be used to generate our dark photon exclusion limits for the cases described in this paper. Finally, we present limits on the kinetic mixing coefficient between dark photons and the Standard Model photons based on existing haloscope axion searches.
4 pages of content plus 2 pages of bibliography, 1 figure; updated with code for a statistical analysis on the polarization of the dark photon; accepted for publication in PRD
References in corpus (19)
- The Local Dark Matter Density
- Dark Matter and Dark Radiation
- A quantum-enhanced search for dark matter axions
- Bosonic super-WIMPs as keV-scale dark matter
- First results from a microwave cavity axion search at 24 micro-eV
- First Results from Axion Haloscope at CAPP around 10.7 eV
- Piezoelectrically Tuned Multimode Cavity Search for Axion Dark Matter
- The HAYSTAC Axion Search Analysis Procedure
- Signatures of a hidden cosmic microwave background
- A Cavity Experiment to Search for Hidden Sector Photons
- A Search for Hidden Sector Photons with ADMX
- Design and Operational Experience of a Microwave Cavity Axion Detector for the 20-100 micro-eV Range
- Probing dark photons with plasma haloscopes
- Microwave cavity light shining through a wall optimization and experiment
- Cryogenic resonant microwave cavity searches for hidden sector photons
- Limits on the abundance of millicharged particles bound to matter
- Trapped electrons and ions as particle detectors
- Kinetic mixing and symmetry breaking dependent interactions of the dark photon
- A cavity entanglement and state swapping method to accelerate the search for axion dark matter