arXiv:2209.09695·v2·Cosmology and Nongalactic Astrophysics
Searching for axion dark matter with MeerKAT Radio Telescope
Yun-Fan Zhou (1,2)🇨🇳 · Nick Houston (3)🇨🇳 · Gyula I. G. Jozsa (4,5,6)🇩🇪 · Hao Chen (7,1,8)🇨🇳 · Yin-Zhe Ma (9,10,1)🇨🇳 · Qiang Yuan (1,2)🇨🇳 · Tao An (11)🇨🇳 · Yogesh Chandola (1)🇨🇳 · Ran Ding (12)🇨🇳 · Fujun Du (1,2)🇨🇳 · Shao-Guang Guo (11)🇨🇳 · Xiaoyuan Huang (1,2)🇨🇳 · Mengtian Li (1,2)🇨🇳 · Chandreyee Sengupta (1) ((1) Purple Mountain Observatory, CAS, (2) University of Science and Technology of China, (3) Beijing University of Technology, (4) Max-Planck-Institut fur Radioastronomie, (5) Rhodes University, (6) South African Radio Astronomy Observatory, (7) University of Cape Town, (8) Zhejiang Laboratory, (9) University of KwaZulu-Natal, (10) National Institute for Theoretical and Computational Sciences (NITheCS), South Africa, (11) Shanghai Astronomical Observatory, CAS, (12) Anhui University)🇨🇳
Abstract
Axions provide a natural and well-motivated dark matter candidate, with the capability to convert directly to photons in the presence of an electromagnetic field. A particularly compelling observational target is the conversion of dark matter axions into photons in the magnetospheres of highly magnetised neutron stars, which is expected to produce a narrow spectral peak centred at the frequency of the axion mass. We point the MeerKAT radio telescope towards the isolated neutron star J0806.44123 for -hours of observation and obtain the radio spectra in the frequency range - MHz. By modelling the conversion process of infalling axion dark matter (DM), we then compare these spectra to theoretical expectations for a given choice of axion parameters. Whilst finding no signal above in the data, we provide a unique constraint on the Primakoff coupling of axion DM, at the confidence level, in the mass range -eV. This result serves the strongest constraint in the axion mass range -eV.
Comments: 6 pages, 3 figures, accepted by Physical Review D