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Identification of a turnover in the initial mass function of a young stellar cluster down to 0.5 M$_{J}$

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arxiv 2409.04624 v2 pith:LHPHFBWY submitted 2024-09-06 astro-ph.SR astro-ph.EPastro-ph.GA

classification astro-ph.SRastro-ph.EPastro-ph.GA
keywords functionmassdownlimitfragmentationturnoverstar-formingtheory
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abstract

A successful theory of star formation should predict the number of objects as a function of their mass produced through star-forming events. Previous studies in star-forming regions and the solar neighborhood identify a mass function increasing from the hydrogen-burning limit down to about 10 M$_{J}$. Theory predicts a limit to the fragmentation process, providing a natural turnover in the mass function down to the opacity limit of turbulent fragmentation thought to be near 1-10 M$_{J}$. Programs to date have not been sensitive enough to probe the hypothesized opacity limit of fragmentation. We present the first identification of a turnover in the initial mass function below 12 M$_{J}$ within NGC 2024, a young star-forming region. With JWST/NIRCam deep exposures across 0.7-5 $\mu$m, we identified several free floating objects down to roughly 3 M$_{J}$ with sensitivity to 0.5 M$_{J}$. We present evidence for a double power law model increasing from about 60 M$_{J}$ to roughly 12 M$_{J}$, consistent with previous studies, followed by a decrease down to 0.5 M$_{J}$. Our results support the predictions of star and brown dwarf formation theory, identifying the theoretical turnover in the mass function and suggest the fundamental limit of turbulent fragmentation near 3 M$_{J}$.

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Forward citations

Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. JWST's Constraints on the Substellar IMF in NGC 2024

    astro-ph.GA 2026-07 accept novelty 6.0 of 10

    JWST NIRSpec spectroscopy of NGC 2024 members yields no evidence for a substellar IMF turnover below 12 Mjup, contrary to a prior photometric-only claim.

  2. Formation of Giant Planets

    astro-ph.EP 2025-01 unverdicted

    A comprehensive review argues that core accretion is the dominant pathway for giant planet formation, while gas disk fragmentation rarely produces planets.

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