Repository logo
  • English
  • Italiano
Log In
Have you forgotten your password?
  1. Home
  2. PRODOTTI RICERCA INAF
  3. 1 CONTRIBUTI IN RIVISTE (Journal articles)
  4. 1.01 Articoli in rivista
  5. JWST/MIRI Detection of Suprathermal OH Rotational Emissions: Probing the Dissociation of the Water by Lyα Photons near the Protostar HOPS 370
 

JWST/MIRI Detection of Suprathermal OH Rotational Emissions: Probing the Dissociation of the Water by Lyα Photons near the Protostar HOPS 370

Journal
THE ASTROPHYSICAL JOURNAL LETTERS  
Date Issued
2024
Author(s)
Neufeld, David A.
•
Manoj, P.
•
Tyagi, Himanshu
•
Narang, Mayank
•
Watson, Dan M.
•
Megeath, S. Thomas
•
Van Dishoeck, Ewine F.
•
Gutermuth, Robert A.
•
Stanke, Thomas
•
Yang, Yao-Lun
•
Rubinstein, Adam E.
•
Anglada, Guillem
•
Beuther, Henrik
•
CARATTI O GARATTI, Alessio  
•
Evans, Neal J.
•
Federman, Samuel
•
Fischer, William J.
•
Green, Joel
•
Klaassen, Pamela
•
Looney, Leslie W.
•
Osorio, Mayra
•
Nazari, Pooneh
•
Tobin, John J.
•
Tychoniec, Łukasz
•
Wolk, Scott
DOI
10.3847/2041-8213/ad3d48
Abstract
Using the MIRI medium-resolution spectrometer on JWST, we have detected pure rotational, suprathermal OH emissions from the vicinity of the intermediate-mass protostar HOPS 370 (OMC2/FIR3). These emissions are observed from shocked knots in a jet/outflow and originate in states of rotational quantum number as high as 46 that possess excitation energies as large as E U /k = 4.65 × 104 K. The relative strengths of the observed OH lines provide a powerful diagnostic of the ultraviolet radiation field in a heavily extinguished region (A V ∼ 10–20) where direct UV observations are impossible. To high precision, the OH line strengths are consistent with a picture in which the suprathermal OH states are populated following the photodissociation of water in its $\tilde{B}-X$ band by ultraviolet radiation produced by fast (∼80 km s‑1) shocks along the jet. The observed dominance of emission from symmetric ( $A^{\prime} $ ) OH states over that from antisymmetric (A″) states provides a distinctive signature of this particular population mechanism. Moreover, the variation of intensity with rotational quantum number suggests specifically that Lyα radiation is responsible for the photodissociation of water, an alternative model with photodissociation by a 104 K blackbody being disfavored at a high level of significance. Using measurements of the Brα flux to estimate the Lyα production rate, we find that ∼4% of the Lyα photons are absorbed by water. Combined with direct measurements of water emissions in the ν 2 = 1 ‑ 0 band, the OH observations promise to provide key constraints on future models for the diffusion of Lyα photons in the vicinity of a shock front.
Volume
966
Issue
2
Start page
L22
Uri
http://hdl.handle.net/20.500.12386/37060
Url
https://iopscience.iop.org/article/10.3847/2041-8213/ad3d48
https://api.elsevier.com/content/abstract/scopus_id/85192102054
Issn Identifier
2041-8205
Ads BibCode
2024ApJ...966L..22N
Rights
open.access
File(s)
Loading...
Thumbnail Image
Name

Neufeld_2024_ApJL_966_L22.pdf

Description
Pdf editoriale
Size

2.9 MB

Format

Adobe PDF

Checksum (MD5)

7722c7afd689c1f98df627e8840806fa

Explore By
  • Communities and Collection
  • Research Outputs
  • Researchers
  • Organizations
  • Projects
Information and guides for authors
  • https://openaccess-info.inaf.it: all about open access in INAF
  • How to enter a product: guides to OA@INAF
  • The INAF Policy on Open Access
  • Downloadable documents and templates

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science

  • Privacy policy
  • End User Agreement
  • Send Feedback