The Gas-Phase Mass-Metallicity Relation of Dwarf Galaxies Across Large-Scale Environments Using the CAVITY Parent Sample

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Main Authors: Bidaran, Bahar, Puertas, Salvador Duarte, Pérez, Isabel, Zurita, Almudena, Espada, Daniel, Argudo-Fernández, María, García-Benito, Rubén, Sánchez-Menguiano, Laura, Verley, Simon, Sánchez, Sebastián F., Falcón-Barroso, Jesús, Ferré-Mateu, Anna, Villalba-Gonzalez, Pedro, Jiménez, Andoni, Peletier, Reynier F., Ruiz-Lara, Tomás
Format: Preprint
Published: 2026
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author Bidaran, Bahar
Puertas, Salvador Duarte
Pérez, Isabel
Zurita, Almudena
Espada, Daniel
Argudo-Fernández, María
García-Benito, Rubén
Sánchez-Menguiano, Laura
Verley, Simon
Sánchez, Sebastián F.
Falcón-Barroso, Jesús
Ferré-Mateu, Anna
Villalba-Gonzalez, Pedro
Jiménez, Andoni
Peletier, Reynier F.
Ruiz-Lara, Tomás
author_facet Bidaran, Bahar
Puertas, Salvador Duarte
Pérez, Isabel
Zurita, Almudena
Espada, Daniel
Argudo-Fernández, María
García-Benito, Rubén
Sánchez-Menguiano, Laura
Verley, Simon
Sánchez, Sebastián F.
Falcón-Barroso, Jesús
Ferré-Mateu, Anna
Villalba-Gonzalez, Pedro
Jiménez, Andoni
Peletier, Reynier F.
Ruiz-Lara, Tomás
contents The gas-phase mass-metallicity relation (MZR) of galaxies shows a noticeable break in slope and increased scatter at low stellar masses, suggesting that the physical processes governing chemical enrichment differ between dwarf and high-mass systems. Dwarf galaxies are highly susceptible to internal and environmental mechanisms due to shallow potential wells. We assess whether a single MZR describes dwarf galaxies across diverse large-scale environments using the CAVITY parent sample. We examine the MZR and star formation rate (SFR) of dwarfs with stellar masses 8.9 < log(M_star/M_sun) < 9.5. Using SDSS optical spectra, we measured emission line fluxes via the pyPipe3D pipeline to derive the MZR and SFR for 353, 311, and 22 dwarf galaxies in voids, filaments, and clusters, respectively. We find a systematic variation in the MZR slope, which is steeper in voids (0.28 +/- 0.03) and progressively flatter in clusters (0.17 +/- 0.08), indicating an environmental dependence in this mass regime. When separated by local environment, isolated and non-isolated dwarfs in voids show no significant differences. Isolated dwarfs in filaments exhibit properties similar to void counterparts. However, non-isolated filament galaxies display flatter MZR slopes, comparable to cluster dwarfs. We report both large- and local-scale environmental dependencies in the gas-phase metallicity and MZR slope. Consistent with the pre-processing framework, our results indicate that the local environment becomes significant within cosmic web filaments, affecting the chemical enrichment and star formation of low-mass systems. This suggests that part of the MZR scatter in dwarf galaxies arises from environmental effects.
format Preprint
id arxiv_https___arxiv_org_abs_2605_25557
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The Gas-Phase Mass-Metallicity Relation of Dwarf Galaxies Across Large-Scale Environments Using the CAVITY Parent Sample
Bidaran, Bahar
Puertas, Salvador Duarte
Pérez, Isabel
Zurita, Almudena
Espada, Daniel
Argudo-Fernández, María
García-Benito, Rubén
Sánchez-Menguiano, Laura
Verley, Simon
Sánchez, Sebastián F.
Falcón-Barroso, Jesús
Ferré-Mateu, Anna
Villalba-Gonzalez, Pedro
Jiménez, Andoni
Peletier, Reynier F.
Ruiz-Lara, Tomás
Astrophysics of Galaxies
The gas-phase mass-metallicity relation (MZR) of galaxies shows a noticeable break in slope and increased scatter at low stellar masses, suggesting that the physical processes governing chemical enrichment differ between dwarf and high-mass systems. Dwarf galaxies are highly susceptible to internal and environmental mechanisms due to shallow potential wells. We assess whether a single MZR describes dwarf galaxies across diverse large-scale environments using the CAVITY parent sample. We examine the MZR and star formation rate (SFR) of dwarfs with stellar masses 8.9 < log(M_star/M_sun) < 9.5. Using SDSS optical spectra, we measured emission line fluxes via the pyPipe3D pipeline to derive the MZR and SFR for 353, 311, and 22 dwarf galaxies in voids, filaments, and clusters, respectively. We find a systematic variation in the MZR slope, which is steeper in voids (0.28 +/- 0.03) and progressively flatter in clusters (0.17 +/- 0.08), indicating an environmental dependence in this mass regime. When separated by local environment, isolated and non-isolated dwarfs in voids show no significant differences. Isolated dwarfs in filaments exhibit properties similar to void counterparts. However, non-isolated filament galaxies display flatter MZR slopes, comparable to cluster dwarfs. We report both large- and local-scale environmental dependencies in the gas-phase metallicity and MZR slope. Consistent with the pre-processing framework, our results indicate that the local environment becomes significant within cosmic web filaments, affecting the chemical enrichment and star formation of low-mass systems. This suggests that part of the MZR scatter in dwarf galaxies arises from environmental effects.
title The Gas-Phase Mass-Metallicity Relation of Dwarf Galaxies Across Large-Scale Environments Using the CAVITY Parent Sample
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2605.25557