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Asymmetric accretion through a streamer onto the pre-stellar core H-MM1

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arxiv 2503.21370 v2 pith:BSTTTN24 submitted 2025-03-27 astro-ph.GA

classification astro-ph.GA
keywords coresubsonicmaterialextendedregionclouddensemass
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CONTEXT: Dense cores are thought to be isolated from the surrounding cloud. However, observations of streamers and subsonic material outside core boundaries challenges this idea. AIMS: In this study, we aim to probe the extended subsonic region observed around the pre-stellar core H-MM1 in L1688 using multi-component kinematical analysis of very high-sensitivity NH3 data. METHODS: We used observations of NH3 (1,1) and (2,2) using GBT. We then fitted up to two components towards the core and its surrounding molecular cloud. RESULTS: We detect an extended region of subsonic turbulence in addition to the ambient cloud, which show supersonic turbulence. This extended subsonic region is approximately 12 times the size of and more than two times as massive as the previously detected subsonic material. The subsonic region is further split into two well-separated, velocity-coherent components, one of which is kinematically and spatially connected to the dense core. The two subsonic components are red- and blue-shifted with respected to the cloud component. We also detect a flow of material onto the dense core from the extended subsonic region via a streamer of length ~0.15 pc (~30000 au). CONCLUSIONS: We find that the extended subsonic component kinematically associated with the dense core contains 27% more mass than the core. This material could be further accreted by the core. The other subsonic component contains a mass similar to that of the core mass, and could be tracing material in the early stage of core formation. The H-MM1 streamer is kinematically similar to the ones observed towards protostellar systems, but is the first instance of such an accretion feature onto a core in its pre-stellar phase. This accretion of chemically fresh material by the pre-stellar core challenges our current understanding of a core evolving with a mass unchanged since the time of its formation.

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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. Protostellar disks in their natural habitat -- the formation of protostars and their accretion disks in the turbulent and magnetized interstellar medium

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

    Simulations from a supernova-driven turbulent ISM show ideal MHD prevents disks larger than 10 au, while ambipolar diffusion permits large disks in two of six protostellar cores.

  2. Chemistry of Dark Molecular Clouds

    astro-ph.GA 2026-07 unverdicted novelty 2.0 of 10

    A comprehensive review arguing that the chemically rich cores TMC-1 CP and L1544 are representative molecular-cloud laboratories, and that complex organic molecule production is largely insensitive to metallicity.

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