Design of new resonant haloscopes in the search for the darkmatter axion: a review of the first steps in the RADES collaboration
arXiv:2111.14510 · doi:10.3390/universe8010005
Abstract
Within the increasing interest in the dark matter axion detection through haloscopes, in which different international groups are currently involved, the RADES group was established in 2016 with the goal of developing very sensitive detection systems to be operated in dipole magnets. This review deals with the work developed by this collaboration during its first five years, from the first designs, based on the multi-cavity concept, aiming to increase the haloscope volume and, so, to improve its sensitivity, their evolution, the data acquisition design, and, finally, the first experimental run. Moreover, the envisaged work within RADES, for both dipole and solenoid magnets, in the short and medium term is also presented.
Review paper, 24 pages, 18 figures, 57 references
References in corpus (11)
- The landscape of QCD axion models
- Invisible Axion Search Methods
- Physics potential of the International Axion Observatory (IAXO)
- Search for invisible axion dark matter of mass meV with the QUAX-- experiment
- Search for invisible axion dark matter with a multiple-cell haloscope
- Resonantly Enhanced Axion-Photon Regeneration
- Design and Operational Experience of a Microwave Cavity Axion Detector for the 20-100 micro-eV Range
- Concept of multiple-cell cavity for axion dark matter search
- Revisiting the detection rate for axion haloscopes
- Thin Film (High Temperature) Superconducting Radiofrequency Cavities for the Search of Axion Dark Matter
- Digging into Axion Physics with (Baby)IAXO
Cited by in corpus (9)
- The Canfranc Axion Detection Experiment (CADEx): Search for axions at 90 GHz with Kinetic Inductance Detectors
- A proposal for a low-frequency axion search in the 1-2 eV range and below with the BabyIAXO magnet
- Discovering QCD-Coupled Axion Dark Matter with Polarization Haloscopes
- On the use of ferroelectric material in the detection of dark matter axions
- Digging into Axion Physics with (Baby)IAXO
- Methods and restrictions to increase the volume of resonant rectangular-section haloscopes for detecting dark matter axions
- Analytical considerations for optimal axion haloscope design
- Split-cavity tuning of a rectangular axion haloscope operating around 8.4 GHz
- ADAMOS: Axion Daily Modulation Searches for Dark Matter at 20 GHz