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March 12, 2026SHILAP Revista de lepidopterología3 citationsOpen Access

The ALMaQUEST Survey. XVII. Unveiling Multiple Quenching Pathways in Green Valley Galaxies via Molecular Gas and Quenching Timescale Analyses

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LLL. C.-C. LinPWPo-Feng WuMTMallory Thorp

Key Points

  • This research aims to determine the driving factors behind quenching in green valley galaxies by analyzing molecular gas and star formation.
  • Examined spatial distributions of star formation and molecular gas in 28 green valley galaxies.
  • Identified regions with suppressed specific star formation rates (sSFR) and measured offsets (Δ f gas and ΔSFE).
  • Classified galaxies based on driven mechanisms using a fixed and variable CO-to-H2 conversion factor.
  • Estimated quenching timescales (τ decay) using integrated MaNGA spectra.
  • 35.7% of green valley galaxies are classified as f gas driven, while 39.3% are SFE driven.
  • 75% of green valley galaxies exhibit τ decay shorter than 1 Gyr, indicating rapid quenching.
  • Observed transition toward SFE-driven quenching as sSFR decreases from the main sequence.

Abstract

Abstract Statistically, green valley (GV) galaxies exhibit lower molecular gas fractions ( f gas ) and reduced star formation efficiency (SFE) compared to star-forming galaxies. However, it remains unclear whether quenching is primarily driven by one factor or results from a combination of mechanisms in individual GV galaxies. In this study, we address this question by examining the spatial distributions of star formation and molecular gas in 28 GVs selected from the ALMaQUEST survey and additional literature samples. For each galaxy, we identify regions with suppressed specific star formation rate (sSFR) and measure Δ f gas and ΔSFE—offsets from the resolved scaling relations of the star-forming main-sequence galaxies. By comparing the fraction of regions with negative Δ f gas and ΔSFE, we classify 35.7% ± 13.2% (57.1% ± 17.9%) of GV galaxies as f gas driven, 39.3% ± 14.0% (39.3% ± 14.0%) as SFE driven, and 25.0% ± 10.6% (3.6% ± 3.6%) as mixed mode when adopting a fixed (variable) CO-to-H 2 conversion factor ( α CO ). These results indicate that GVs undergo quenching through multiple pathways. As sSFR decreases from the main sequence to the GV, we observe a transition toward predominantly SFE-driven quenching, possibly linked to internal processes such as morphological quenching or active galactic nucleus activity. We further estimate the quenching timescale ( τ decay ), defined as the time from the peak star formation rate to 1 e –1 (approximately 37%) of its value, using integrated MaNGA spectra. SFE-driven quenching is typically associated with short τ decay , while f gas -driven quenching shows a broader range. Overall, 75% of GVs exhibit τ decay shorter than 1 Gyr, suggesting that quenching in most GVs proceeds rapidly, challenging purely slow-quenching scenarios like starvation.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/69b2579096eeacc4fcec6417https://doi.org/10.3847/1538-4357/ae3b2b
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