Solving the excitation and chemical abundances in shocks: the case of HH1
T. Giannini, S. Antoniucci, B. Nisini, F. Bacciotti, and L. Podio

TL;DR
This study uses deep spectroscopic observations of HH1 to analyze the physical and chemical effects of protostellar shocks, revealing temperature stratification, multiple density regimes, and dust depletion effects.
Contribution
First detailed spectroscopic analysis of HH1 to probe physical regimes behind a dissociative shock, deriving temperature, density, ionization, and chemical abundances.
Findings
Temperature ranges from 4000 to 80000 K.
Identification of two ionized gas density regimes.
Evidence of dust depletion with iron reduced by 40%.
Abstract
We present deep spectroscopic (3600 - 24700 A) X-shooter observations of the bright Herbig-Haro object HH1, one of the best laboratories to study the chemical and physical modifications caused by protostellar shocks on the natal cloud. We observe atomic fine structure lines, HI, and He, recombination lines and H_2, ro-vibrational lines (more than 500 detections in total). Line emission was analyzed by means of Non Local Thermal Equilibiurm codes to derive the electron temperature and density, and, for the first time, we are able to accurately probe different physical regimes behind a dissociative shock. We find a temperature stratification in the range 4000 - 80000 K, and a significant correlation between temperature and ionization energy. Two density regimes are identified for the ionized gas, a more tenuous, spatially broad component (density about 10^3 cm^-3), and a more compact…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Astro and Planetary Science · Solar and Space Plasma Dynamics
