The extremely sharp transition between molecular and ionized gas in the Horsehead nebula
C. Hern\'andez-Vera, V. V. Guzm\'an, J. R. Goicoechea, V. Maillard, J., Pety, F. Le Petit, M. Gerin, E. Bron, E. Roueff, A. Abergel, T. Schirmer, J., Carpenter, P. Gratier, K. Gordon, K. Misselt

TL;DR
This study uses high-resolution ALMA observations to analyze the sharp transition between molecular and ionized gas in the Horsehead nebula, revealing a very thin neutral atomic layer and detailed gas pressure structures.
Contribution
It provides the highest angular resolution images of the Horsehead nebula's gas transition zone, confirming the presence of a thin atomic layer and detailed pressure gradients consistent with stationary PDR models.
Findings
Very thin neutral atomic gas layer (<650 au) at the cloud edge.
Steep density gradient explained by isobaric PDR models.
Gas pressure at the PDR interface exceeds that in the HII region.
Abstract
(Abridged) Massive stars can determine the evolution of molecular clouds with their strong ultraviolet (UV) radiation fields. Moreover, UV radiation is relevant in setting the thermal gas pressure in star-forming clouds, whose influence can extend from the rims of molecular clouds to entire star-forming galaxies. Probing the fundamental structure of nearby molecular clouds is therefore crucial to understand how massive stars shape their surrounding medium and how fast molecular clouds are destroyed, specifically at their UV-illuminated edges, where models predict an intermediate zone of neutral atomic gas between the molecular cloud and the surrounding ionized gas whose size is directly related to the exposed physical conditions. We present the highest angular resolution (~", corresponding to au) and velocity-resolved images of the molecular gas emission in the Horsehead…
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