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The Massive and Quiescent Elliptical Host Galaxy of the Repeating Fast Radio Burst FRB20240209A

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arxiv 2410.23336 v1 pith:RWS7MZUQ submitted 2024-10-30 astro-ph.HE

classification astro-ph.HE
keywords hostellipticalfrb20240209agalaxymassivequiescentrepeatingstellar
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abstract

The discovery and localization of FRB20240209A by the Canadian Hydrogen Intensity Mapping Fast Radio Burst (CHIME/FRB) experiment marks the first repeating FRB localized with the CHIME/FRB Outriggers and adds to the small sample of repeating FRBs with associated host galaxies. Here we present Keck and Gemini observations of the host that reveal a redshift $z=0.1384\pm0.0004$. We perform stellar population modeling to jointly fit the optical through mid-infrared data of the host and infer a median stellar mass log$(M_*/{\rm M_{\odot}})=11.34\pm0.01$ and a mass-weighted stellar population age $\sim11$Gyr, corresponding to the most massive and oldest FRB host discovered to date. Coupled with a star formation rate $<0.36\,{\rm M_{\odot}\ yr^{-1}}$, the specific star formation rate $<10^{-11.8}\rm\ yr^{-1}$ classifies the host as quiescent. Through surface brightness profile modeling, we determine an elliptical galaxy morphology, marking the host as the first confirmed elliptical FRB host. The discovery of a quiescent early-type host galaxy within a transient class predominantly characterized by late-type star-forming hosts is reminiscent of short-duration gamma-ray bursts, Type Ia supernovae, and ultraluminous X-ray sources. Based on these shared host demographics, coupled with a large offset as demonstrated in our companion paper, we conclude that preferred progenitors for FRB20240209A include magnetars formed through merging binary neutron stars/white dwarfs or the accretion-induced collapse of a white dwarf, or a luminous X-ray binary. Together with FRB20200120E localized to a globular cluster in M81, our findings provide strong evidence that some fraction of FRBs may arise from a process distinct from the core collapse of massive stars.

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Forward citations

Cited by 6 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A new measurement of the FRB DM-galaxy cross correlation and a first joint analysis with the kinematic SZ effect

    astro-ph.CO 2026-08 conditional novelty 6.0 of 10

    The FRB DM-galaxy cross-correlation is detected at 6.5 sigma and disfavors a no-feedback baryon distribution at about 9 sigma.

  2. The role of the galaxy stellar mass function in determining the cosmological distribution of astrophysical transients with applications to fast radio bursts and merging binary black holes

    astro-ph.HE 2025-12 conditional novelty 6.0 of 10

    Using the galaxy stellar mass function weighted by observed FRB host masses lowers the relevant stellar-mass density by ~3x, boosting the implied FRB formation efficiency and biasing standard population-inference results.

  3. Stellar Mass-Dispersion Measure Correlations Constrain Baryonic Feedback in Fast Radio Burst Host Galaxies

    astro-ph.GA 2025-07 conditional novelty 6.0 of 10

    Using 20 low-redshift fast radio burst hosts, the authors find host dispersion measure decreases with stellar mass, a trend that conflicts with the weak-feedback CAMELS-Astrid simulation.

  4. The Cosmic Evolution of Fast Radio Bursts Inferred from the CHIME/FRB Baseband Catalog 1

    astro-ph.HE 2025-01 conditional novelty 6.0 of 10

    CHIME/FRB baseband data imply an FRB energy slope near -2 and a mixed source population with about 2 Gyr delays, plus telescope specs for detecting reionization-era FRBs.

  5. Timing of Seven Isolated Pulsars in the Globular Cluster Terzan 1

    astro-ph.HE 2024-12 conditional novelty 4.0 of 10

    First timing solutions for the seven Terzan 1 pulsars yield measured positions and spin-down rates, a degenerate core model, and a possible young age for Ter 1 A.

  6. Multidisciplinary Science in the Multimessenger Era

    astro-ph.HE 2025-02 unverdicted novelty 3.0 of 10

    A community white paper recommending an NNSA-style end-to-end integration of astrophysics, nuclear, plasma, atomic, and computational sciences to maximize return from time-domain and multimessenger facilities.

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