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Constraining the Hubble constant and its lower limit from the proper motion of extragalactic radio jets

Authors :
Tiger Yu-Yang Hsiao
Tomotsugu Goto
Tetsuya Hashimoto
Daryl Joe D Santos
Yi Hang Valerie Wong
Seong Jin Kim
Bjorn Jasper R Raquel
Simon C-C Ho
Bo-Han Chen
Ece Kilerci
Ting-Yi Lu
Alvina Y L On
Yu-Wei Lin
Cossas K-W Wu
Source :
Hsiao, T Y-Y, Goto, T, Hashimoto, T, Santos, D J D, Wong, Y H V, Kim, S J, Raquel, B J R, Ho, S C-C, Chen, B-H, Kilerci, E, Lu, T-Y, On, A Y L, Lin, Y-W & Wu, C K-W 2022, ' Constraining the Hubble constant and its lower limit from the proper motion of extragalactic radio jets ', Monthly Notices of the Royal Astronomical Society, vol. 517, no. 1, pp. 447-457 . https://doi.org/10.1093/mnras/stac2613
Publication Year :
2022
Publisher :
arXiv, 2022.

Abstract

The Hubble constant ($H_{0}$) is a measurement to describe the expansion rate of the Universe in the current era. However, there is a $4.4\sigma$ discrepancy between the measurements from the early Universe and the late Universe. In this research, we propose a model-free and distance-free method to constrain $H_{0}$. Combining Friedman-Lema\^itre-Robertson-Walker cosmology with geometrical relation of the proper motion of extragalactic jets, the lower limit ($H_{\rm 0,min}$) of $H_{0}$ can be determined using only three cosmology-free observables: the redshifts of the host galaxies, as well as the approaching and receding angular velocities of radio jets. Using these, we propose to use the Kolmogorov-Smirnov test (K-S test) between cumulative distribution functions of $H_{\rm 0,min}$ to differentiate cosmology. We simulate 100, 200, and 500 extragalactic jets with 3 levels of accuracy of the proper motion ($\mu_{a}$ and $\mu_{r}$), at $10\%$, $5\%$, and $1\%$, corresponding to the accuracies of the current and future radio interferometers. We perform K-S tests between the simulated samples as theoretical distributions with different $H_{0}$ and power-law index of velocity distribution of jets and mock observational data. Our result suggests increasing sample sizes leads to tighter constraints on both power-law index and the Hubble constant at moderate accuracy (i.e., $10\%$ and $5\%$) while at $1\%$ accuracy, increasing sample sizes leads to tighter constraints on power-law index more. Improving accuracy results in better constraints in the Hubble constant compared with the power-law index in all cases but it alleviates the degeneracy.<br />Comment: 13 pages, 14 figures, accepted for publication in MNRAS

Details

Database :
OpenAIRE
Journal :
Hsiao, T Y-Y, Goto, T, Hashimoto, T, Santos, D J D, Wong, Y H V, Kim, S J, Raquel, B J R, Ho, S C-C, Chen, B-H, Kilerci, E, Lu, T-Y, On, A Y L, Lin, Y-W & Wu, C K-W 2022, ' Constraining the Hubble constant and its lower limit from the proper motion of extragalactic radio jets ', Monthly Notices of the Royal Astronomical Society, vol. 517, no. 1, pp. 447-457 . https://doi.org/10.1093/mnras/stac2613
Accession number :
edsair.doi.dedup.....f8e75ca2650352de1c38e700ab53b358
Full Text :
https://doi.org/10.48550/arxiv.2209.05008