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The Rise of Ionized Gas Filaments in Early-Type Galaxies

2025/07/03 by Ryan Eskenasy, Eskenasy, Ryan, Valeria Olivares +3 · 1 voice
Physics and Astronomy · #Astronomy and Astrophysical Research #Astrophysics and Star Formation Studies #Galaxies: Formation, Evolution, Phenomena #Scientific Research and Discoveries

paper · doi:10.33232/001c.158379

openalex created_date 2025/10/20 · openalex publication_date 2026/02/26 · openalex updated_date 2026/07/31

Abstract

Multiphase filamentary nebulae are ubiquitous in the brightest cluster galaxies (BCGs) of cool-core clusters, providing key insights into the cycle of baryons and the feeding and feedback of supermassive black holes. However, BCGs account for less than 1% of all early-type galaxies (ETGs). To broaden our understanding of how multiphase filamentary nebulae form in ETGs and connect to the greater picture of galaxy evolution, it is crucial to explore ETGs that are outside of the dense centers of galaxy clusters or groups. We present VLT-MUSE IFU observations of 126 nearby non-central ETGs, detecting warm ionized gas in 62 of them. 35 out of 62 appear to host rotating gas disks with the majority of them morphologically and kinematically aligned with their stellar components, which may suggest stellar mass loss as the origin of their warm gas. The remaining 27 host filamentary nebulae that are frequently decoupled from the stellar components, resembling those observed in BCGs. These filamentary sources display unique emission line properties that cannot be fully explained by photoionization from post-asymptotic giant branch stars, active galactic nuclei, or fast gas shocks alone. For the twelve filamentary sources that have been observed with Chandra, their soft X-ray emission lies above or at (within uncertainties) the expected contribution from unresolved low-mass X-ray binaries, indicating that filamentary systems generally host an appreciable hot gas reservoir. We suggest that cooling-related processes, e.g., self-irradiation associated with the cooling hot gas, may contribute to the powering of warm gas line emission, similar to cool-core clusters, though the detailed mechanisms and physical conditions may differ. As a detailed case study, we investigate NGC 4374, a non-central ETG with extensive Chandra observations, and find that its warm filaments are over-pressured compared to the hot filaments - opposite to what is observed in cool-core clusters

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