Emily Wisnioski
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Articles (20)
The mass–metallicity and fundamental metallicity relations in non-AGN and AGN-host galaxies
Galaxies’ stellar masses, gas-phase oxygen abundances (metallicity), and star formation rates (SFRs) obey a series of empirical correlations, most notably the mass–metallicity relation (MZR) and fundamental metallicity relation (FZR), which relates oxygen abundance to a combination of stellar mass and SFR. However, due to the difficulty of measuring oxygen abundances and SFRs in galaxies that host powerful active galactic nuclei (AGN), to date it is unknown to what extent AGN-host galaxies also follow these correlations. In this work, we apply Bayesian methods to the MaNGA integral field spectrographic (IFS) survey that allow us to measure oxygen abundances and SFRs in AGN hosts, and use these measurements to explore how the MZR and FZR differ between galaxies that do and do not host AGN. We find similar MZRs at stellar masses above $10^{10.5} \, \mathrm{M}_\odot$, but that at lower stellar masses AGN hosts show up to $\sim 0.2$ dex higher oxygen abundances. The offset in the FZR is significantly smaller, suggesting that the larger deviation in the MZR is a result of AGN-host galaxies having systematically lower SFRs at fixed stellar mass. However, within the AGN-host sample there is little correlation between SFR and oxygen abundance. These findings support a scenario in which an AGN can halt efficient gas accretion, which drives non-AGN host galaxies to both higher SFR and lower oxygen abundance, resulting in the galaxy evolving off the star-forming main sequence (SFMS). As a consequence, as the SFR declines for an individual system its metallicity remains mostly unchanged.
Year:
2024
Cosmological evolution of metallicity correlation functions from the Auriga simulations
We study the cosmological evolution of the two-point correlation functions of galactic gas-phase metal distributions using the 28 simulated galaxies from the Auriga Project. Using mock observations of the z = 0 snapshots to mimic our past work, we show that the correlation functions of the simulated mock observations are well matched to the correlation functions measured from local galaxy surveys. This comparison suggests that the simulations capture the processes important for determining metal correlation lengths, the key parameter in metallicity correlation functions. We investigate the evolution of metallicity correlations over cosmic time using the true simulation data, showing that individual galaxies undergo no significant systematic evolution in their metal correlation functions from z ∼ 3 to today. In addition, the fluctuations in metal correlation length are correlated with but lag ahead fluctuations in star formation rate. This suggests that re-arrangement of metals within galaxies occurs at a higher cadence than star formation activity, and is more sensitive to the changes of environment, such as galaxy mergers, gas inflows/outflows, and fly-bys.
Year:
2024
Collaborators (24)
Katherine Harborne
University of Western Australia
Yuan-Sen Ting
Associate Professor (tenured)
Australian National University
Aaron Ludlow
University of Western Australia
Sirio Belli
Associate Professor
University of Bologna
Satoru Iguchi
教授/Professor
自然科学研究機構国立天文台/National Astronomical Observatory of Japan
Anshu Gupta
Curtin University
John Forbes
University of Canterbury
Themiya Nanayakkara
Swinburne University of Technology
Sabine Bellstedt
University of Western Australia
Andrew Battisti
Australian National University
Takafumi Tsukui
Australian National University
Mark Krumholz
Professor
Australian National University
Sabine Thater
Universität Wien
Ayan Acharyya
Johns Hopkins University
Richard McDermid
Macquarie University
Claudia Lagos
University of Western Australia
Ioana Ciucă
Australian National University
Giulia Santucci
University of Western Australia
Yifan Mai
Macquarie University
Zefeng Li
Australian National University
Tayyaba Zafar
Macquarie University
Sedona Price
University of Pittsburgh
Caroline Foster
ARC Future Fellow & Scientia Senior Lecturer
University of New South Wales
Elisabete da Cunha
University of Western Australia

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