The Aromatic Infrared Bands around the Wolf-Rayet Binary WR140 Revealed by JWST
Abstract
We have analyzed the aromatic infrared bands (AIBs) in the 6-11.2 m range around the Wolf-Rayet binary WR140 (d=1.64 kpc) obtained with the James Webb Space Telescope (JWST) Mid-Infrared Instrument (MIRI) Medium-Resolution Spectrometer (MRS). In WR140's circumstellar environment, we have detected AIBs at 6 m and 7.7 m which are attributed to C-C stretching modes. These features have been detected in the innermost dust shell (Shell1; ~2100 au from WR140), the subsequent dust shell (Shell2; ~5200 au), and ``off-shell'' regions in the MRS coverage. The 11.2 m AIB, which is associated with the C-H out-of-plane bending mode, has been tentatively detected in Shell2 and the surrounding off-shell positions around Shell2. We compared the AIB features from WR140 to spectra of established AIB feature classes A, B, C, and D. The detected features around WR140 do not agree with these established classes. The peak wavelengths and full width half maxima (FWHMs) of the 6 m and 7.7 m features are, however, consistent with those of R Coronae Borealis (RCB) stars with hydrogen-poor conditions. We discuss a possible structure of carbonaceous compounds and environments where they form around WR140. It is proposed that hydrogen-poor carbonaceous compounds initially originate from the carbon-rich WR wind, and the hydrogen-rich stellar wind from the companion O star may provide hydrogen to these carbonaceous compounds.
Keywords
Cite
@article{arxiv.2509.01026,
title = {The Aromatic Infrared Bands around the Wolf-Rayet Binary WR140 Revealed by JWST},
author = {Kotomi Taniguchi and Ryan M. Lau and Takashi Onaka and Macarena Garcia Marin and Hideo Matsuhara and Anthony Moffat and Theodore R. Gull and Thomas I. Madura and Gerd Weigelt and Riko Senoo and Alan T. Tokunaga and Walter Duley and Peredur M. Williams and Noel D. Richardson and Joel Sanchez-Bermudez},
journal= {arXiv preprint arXiv:2509.01026},
year = {2025}
}
Comments
Accepted by the publication in The Astrophysical Journal (ApJ). 17 pages, 10 figures, 2 table