English

Investigating Mutual Coupling in the Hydrogen Epoch of Reionization Array and Mitigating its Effects on the 21-cm Power Spectrum

Cosmology and Nongalactic Astrophysics 2024-06-14 v1 Instrumentation and Methods for Astrophysics

Abstract

Interferometric experiments designed to detect the highly redshifted 21-cm signal from neutral hydrogen are producing increasingly stringent constraints on the 21-cm power spectrum, but some k-modes remain systematics-dominated. Mutual coupling is a major systematic that must be overcome in order to detect the 21-cm signal, and simulations that reproduce effects seen in the data can guide strategies for mitigating mutual coupling. In this paper, we analyse 12 nights of data from the Hydrogen Epoch of Reionization Array and compare the data against simulations that include a computationally efficient and physically motivated semi-analytic treatment of mutual coupling. We find that simulated coupling features qualitatively agree with coupling features in the data; however, coupling features in the data are brighter than the simulated features, indicating the presence of additional coupling mechanisms not captured by our model. We explore the use of fringe-rate filters as mutual coupling mitigation tools and use our simulations to investigate the effects of mutual coupling on a simulated cosmological 21-cm power spectrum in a "worst case" scenario where the foregrounds are particularly bright. We find that mutual coupling contaminates a large portion of the "EoR Window", and the contamination is several orders-of-magnitude larger than our simulated cosmic signal across a wide range of cosmological Fourier modes. While our fiducial fringe-rate filtering strategy reduces mutual coupling by roughly a factor of 100 in power, a non-negligible amount of coupling cannot be excised with fringe-rate filters, so more sophisticated mitigation strategies are required.

Keywords

Cite

@article{arxiv.2406.08549,
  title  = {Investigating Mutual Coupling in the Hydrogen Epoch of Reionization Array and Mitigating its Effects on the 21-cm Power Spectrum},
  author = {E. Rath and R. Pascua and A. T. Josaitis and A. Ewall-Wice and N. Fagnoni and E. de Lera Acedo and Z. E. Martinot and Z. Abdurashidova and T. Adams and J. E. Aguirre and R. Baartman and A. P. Beardsley and L. M. Berkhout and G. Bernardi and T. S. Billings and J. D. Bowman and P. Bull and J. Burba and R. Byrne and S. Carey and K. -F. Chen and S. Choudhuri and T. Cox and D. R. DeBoer and M. Dexter and J. S. Dillon and S. Dynes and N. Eksteen and J. Ely and R. Fritz and S. R. Furlanetto and K. Gale-Sides and H. Garsden and B. K. Gehlot and A. Ghosh and A. Gorce and D. Gorthi and Z. Halday and B. J. Hazelton and J. N. Hewitt and J. Hickish and T. Huang and D. C. Jacobs and N. S. Kern and J. Kerrigan and P. Kittiwisit and M. Kolopanis and A. Lanman and A. Liu and Y. -Z. Ma and D. H. E. MacMahon and L. Malan and C. Malgas and K. Malgas and B. Marero and L. McBride and A. Mesinger and N. Mohamed-Hinds and M. Molewa and M. F. Morales and S. G. Murray and B. Nikolic and H. Nuwegeld and A. R. Parsons and N. Patra and P. La Plante and Y. Qin and N. Razavi-Ghods and D. Riley and J. Robnett and K. Rosie and M. G. Santos and P. Sims and S. Singh and D. Storer and H. Swarts and J. Tan and M. J. Wilensky and P. K. G. Williams and P. van Wyngaarden and H. Zheng},
  journal= {arXiv preprint arXiv:2406.08549},
  year   = {2024}
}

Comments

19 pages, 12 figures, submitted to MNRAS