| Literature DB >> 33576660 |
Jack A Devlin1,2, Matthias J Borchert1,3,4, Stefan Erlewein1,2, Markus Fleck1,5, James A Harrington1,6, Barbara Latacz1, Jan Warncke1, Elise Wursten1,2, Matthew A Bohman1,6, Andreas H Mooser1,6, Christian Smorra1,7, Markus Wiesinger1,6, Christian Will6, Klaus Blaum6, Yasuyuki Matsuda5, Christian Ospelkaus3,4, Wolfgang Quint8, Jochen Walz7,9, Yasunori Yamazaki1, Stefan Ulmer1.
Abstract
We constrain the coupling between axionlike particles (ALPs) and photons, measured with the superconducting resonant detection circuit of a cryogenic Penning trap. By searching the noise spectrum of our fixed-frequency resonant circuit for peaks caused by dark matter ALPs converting into photons in the strong magnetic field of the Penning-trap magnet, we are able to constrain the coupling of ALPs with masses around 2.7906-2.7914 neV/c^{2} to g_{aγ}<1×10^{-11} GeV^{-1}. This is more than one order of magnitude lower than the best laboratory haloscope and approximately 5 times lower than the CERN axion solar telescope (CAST), setting limits in a mass and coupling range which is not constrained by astrophysical observations. Our approach can be extended to many other Penning-trap experiments and has the potential to provide broad limits in the low ALP mass range.Entities:
Year: 2021 PMID: 33576660 DOI: 10.1103/PhysRevLett.126.041301
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161