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Galaxy Zoo CEERS: Bar fractions up to z~4.0

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arxiv 2505.01421 v1 pith:6FHIJFIX submitted 2025-05-02 astro-ph.GA

classification astro-ph.GA
keywords fractionbarsstrongceersfindformationgalaxyredshifts
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abstract

We study the evolution of the bar fraction in disc galaxies between $0.5 < z < 4.0$ using multi-band coloured images from JWST CEERS. These images were classified by citizen scientists in a new phase of the Galaxy Zoo project called GZ CEERS. Citizen scientists were asked whether a strong or weak bar was visible in the host galaxy. After considering multiple corrections for observational biases, we find that the bar fraction decreases with redshift in our volume-limited sample (n = 398); from $25^{+6}_{-4}$% at $0.5 < z < 1.0$ to $3^{+6}_{-1}$% at $3.0 < z < 4.0$. However, we argue it is appropriate to interpret these fractions as lower limits. Disentangling real changes in the bar fraction from detection biases remains challenging. Nevertheless, we find a significant number of bars up to $z = 2.5$. This implies that discs are dynamically cool or baryon-dominated, enabling them to host bars. This also suggests that bar-driven secular evolution likely plays an important role at higher redshifts. When we distinguish between strong and weak bars, we find that the weak bar fraction decreases with increasing redshift. In contrast, the strong bar fraction is constant between $0.5 < z < 2.5$. This implies that the strong bars found in this work are robust long-lived structures, unless the rate of bar destruction is similar to the rate of bar formation. Finally, our results are consistent with disc instabilities being the dominant mode of bar formation at lower redshifts, while bar formation through interactions and mergers is more common at higher redshifts.

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Cited by 2 Pith papers

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

  1. Conditions for Bar Formation in Bulgeless Disk Galaxies

    astro-ph.GA 2025-09 conditional novelty 6.0 of 10

    Bars form in bulgeless disk galaxies when Q_T + 0.4(X - 1.4)^2 <= 1.8, equivalent to swing amplification factor Gamma >= 10.

  2. Secular Attrition of Classical Bulges by Stellar Bars

    astro-ph.GA 2025-06 conditional novelty 6.0 of 10

    Stellar bars can convert up to 50% of a classical bulge's stars into bar-supporting disk-like orbits, potentially explaining the scarcity of classical bulges.

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