First Core Properties: From Low- to High-mass Star Formation
Asmita Bhandare, Rolf Kuiper, Thomas Henning, Christian Fendt,, Gabriel-Dominique Marleau, and Anders K\"olligan

TL;DR
This paper investigates the properties and evolution of Larson's first and second cores across a wide range of initial cloud masses, revealing mass-dependent core characteristics and different formation pathways in star formation.
Contribution
It provides a comprehensive simulation of core collapse from low- to high-mass clouds using realistic thermodynamics and radiative transfer, extending previous studies to a broader mass spectrum.
Findings
Core properties depend on initial cloud mass.
First core radius and mass vary non-monotonically with mass.
High-mass cores rapidly evolve to second cores.
Abstract
In this study, the main goal is to understand the molecular cloud core collapse through the stages of first and second hydrostatic core formation. We investigate the properties of Larson's first and second cores following the evolution of the molecular cloud core until formation of Larson's cores. We expand these collapse studies for the first time to span a wide range of initial cloud masses from 0.5 to 100 Msun. Understanding the complexity of the numerous physical processes involved in the very early stages of star formation requires detailed thermodynamical modeling in terms of radiation transport and phase transitions. For this we use a realistic gas equation of state via a density and temperature-dependent adiabatic index and mean molecular weight to model the phase transitions. We use a gray treatment of radiative transfer coupled with hydrodynamics to simulate Larson's collapse…
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