Devlin Jack A, Borchert Matthias J, Erlewein Stefan, Fleck Markus, Harrington James A, Latacz Barbara, Warncke Jan, Wursten Elise, Bohman Matthew A, Mooser Andreas H, Smorra Christian, Wiesinger Markus, Will Christian, Blaum Klaus, Matsuda Yasuyuki, Ospelkaus Christian, Quint Wolfgang, Walz Jochen, Yamazaki Yasunori, Ulmer Stefan
RIKEN, Ulmer Fundamental Symmetries Laboratory, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
CERN, Esplanade des Particules 1, CH-1211 Geneva 23, Switzerland.
Phys Rev Lett. 2021 Jan 29;126(4):041301. doi: 10.1103/PhysRevLett.126.041301.
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.
我们利用低温潘宁阱的超导共振检测电路,对类轴子粒子(ALP)与光子之间的耦合进行了限制。通过在我们的固定频率共振电路的噪声谱中搜索由暗物质ALP在潘宁阱磁铁的强磁场中转化为光子所引起的峰值,我们能够将质量约为2.7906 - 2.7914 neV/c²的ALP与光子的耦合限制为g_{aγ}<1×10^{-11} GeV^{-1}。这比最佳实验室卤化物望远镜低一个多数量级,比欧洲核子研究组织轴子太阳望远镜(CAST)低约5倍,在天体物理观测未限制的质量和耦合范围内设定了限制。我们的方法可以扩展到许多其他潘宁阱实验,并有可能在低ALP质量范围内提供广泛的限制。