Simulating MADMAX in 3D: Requirements for Dielectric Axion Haloscopes
Abstract
We present 3D calculations for dielectric haloscopes such as the currently envisioned MADMAX experiment. For ideal systems with perfectly flat, parallel and isotropic dielectric disks of finite diameter, we find that a geometrical form factor reduces the emitted power by up to compared to earlier 1D calculations. We derive the emitted beam shape, which is important for antenna design. We show that realistic dark matter axion velocities of and inhomogeneities of the external magnetic field at the scale of have negligible impact on the sensitivity of MADMAX. We investigate design requirements for which the emitted power changes by less than for a benchmark boost factor with a bandwidth of at , corresponding to an axion mass of . We find that the maximum allowed disk tilt is divided by the disk diameter, the required disk planarity is (min-to-max) or better, and the maximum allowed surface roughness is (min-to-max). We show how using tiled dielectric disks glued together from multiple smaller patches can affect the beam shape and antenna coupling.
Cite
@article{arxiv.2104.06553,
title = {Simulating MADMAX in 3D: Requirements for Dielectric Axion Haloscopes},
author = {S. Knirck and J. Schütte-Engel and S. Beurthey and D. Breitmoser and A. Caldwell and C. Diaconu and J. Diehl and J. Egge and M. Esposito and A. Gardikiotis and E. Garutti and S. Heyminck and F. Hubaut and J. Jochum and P. Karst and M. Kramer and C. Krieger and D. Labat and C. Lee and X. Li and A. Lindner and B. Majorovits and S. Martens and M. Matysek and E. Öz and L. Planat and P. Pralavorio and G. Raffelt and A. Ranadive and J. Redondo and O. Reimann and A. Ringwald and N. Roch and J. Schaffran and A. Schmidt and L. Shtembari and F. Steffen and C. Strandhagen and D. Strom and I. Usherov and G. Wieching},
journal= {arXiv preprint arXiv:2104.06553},
year = {2021}
}
Comments
25 pages, 12 figures; added detail, updated references, matches published version