Experimental determination of axion signal power of dish antennas and dielectric haloscopes using the reciprocity approach

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Egge, J., Ekmedžić, M., Gardikiotis, A., Garutti, E., Heyminck, S., Kasemann, C., Knirck, S., Kramer, M., Krieger, C., Leppla-Weber, D., Martens, S., Öz, E., Salama, N., Schmidt, A., Wang, H., Wieching, G.
Natura: Preprint
Pubblicazione: 2023
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866913294578614272
author Egge, J.
Ekmedžić, M.
Gardikiotis, A.
Garutti, E.
Heyminck, S.
Kasemann, C.
Knirck, S.
Kramer, M.
Krieger, C.
Leppla-Weber, D.
Martens, S.
Öz, E.
Salama, N.
Schmidt, A.
Wang, H.
Wieching, G.
author_facet Egge, J.
Ekmedžić, M.
Gardikiotis, A.
Garutti, E.
Heyminck, S.
Kasemann, C.
Knirck, S.
Kramer, M.
Krieger, C.
Leppla-Weber, D.
Martens, S.
Öz, E.
Salama, N.
Schmidt, A.
Wang, H.
Wieching, G.
contents The reciprocity approach is a powerful method to determine the expected signal power of axion haloscopes in a model-independent way. Especially for open and broadband setups like the MADMAX dielectric haloscope the sensitivity to the axion field is difficult to calibrate since they do not allow discrete eigenmode analysis and are optically too large to fully simulate. The central idea of the reciprocity approach is to measure a reflection-induced test field in the setup instead of trying to simulate the axion-induced field. In this article, the reciprocity approach is used to determine the expected signal power of a dish antenna and a minimal dielectric haloscope directly from measurements. The results match expectations from simulation but also include important systematic effects that are too difficult to simulate. In particular, the effect of antenna standing waves and higher order mode perturbations can be quantified for the first time in a dielectric haloscope.
format Preprint
id arxiv_https___arxiv_org_abs_2311_13359
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Experimental determination of axion signal power of dish antennas and dielectric haloscopes using the reciprocity approach
Egge, J.
Ekmedžić, M.
Gardikiotis, A.
Garutti, E.
Heyminck, S.
Kasemann, C.
Knirck, S.
Kramer, M.
Krieger, C.
Leppla-Weber, D.
Martens, S.
Öz, E.
Salama, N.
Schmidt, A.
Wang, H.
Wieching, G.
High Energy Physics - Experiment
High Energy Physics - Phenomenology
Instrumentation and Detectors
The reciprocity approach is a powerful method to determine the expected signal power of axion haloscopes in a model-independent way. Especially for open and broadband setups like the MADMAX dielectric haloscope the sensitivity to the axion field is difficult to calibrate since they do not allow discrete eigenmode analysis and are optically too large to fully simulate. The central idea of the reciprocity approach is to measure a reflection-induced test field in the setup instead of trying to simulate the axion-induced field. In this article, the reciprocity approach is used to determine the expected signal power of a dish antenna and a minimal dielectric haloscope directly from measurements. The results match expectations from simulation but also include important systematic effects that are too difficult to simulate. In particular, the effect of antenna standing waves and higher order mode perturbations can be quantified for the first time in a dielectric haloscope.
title Experimental determination of axion signal power of dish antennas and dielectric haloscopes using the reciprocity approach
topic High Energy Physics - Experiment
High Energy Physics - Phenomenology
Instrumentation and Detectors
url https://arxiv.org/abs/2311.13359