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August 9, 2026Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

Observations of Ionised Carbon towards the Gamma-Ray-Bright Supernova Remnant RX J1713.7-3946

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ATAbhilasha ThakurGRG P RowellRHR Higgins

Key Points

  • The aim is to understand the role of ionised carbon as a tracer of low-energy cosmic rays within supernova remnants.
  • Conducted observations of [C II] 158 μm line emission using SOFIA.
  • Compared data with molecular and atomic gas emissions from various sources.
  • Modelled [C II] emissivity using the CLOUDY photoionisation code.
  • [C II] emission closely follows atomic gas, especially near the SNR shock front.
  • Peak [C II] intensities coincide with enhanced TeV gamma-ray emission regions.
  • UV photons and low-energy cosmic rays can each contribute significantly to [C II] emission levels.

Abstract

Abstract The origin of Galactic Cosmic Rays (CRs), particularly at sub-GeV energies, remains uncertain due to their difficulty in being traced. One possible tracer of low-energy CRs is ionised carbon (C II), which may be enhanced in regions affected by CR-induced ionisation. We present observations of C II 158 μm line emission across the γ-ray-bright supernova remnant (SNR) RX J1713.7-3946 obtained with SOFIA. These data are compared with molecular and atomic gas from Mopra (12CO), Nanten (12CO) and SGPS (HI), and high-energy emission from TeV γ-ray H.E.S.S. and X-ray XMM-Newton. We find C II emission follows the atomic gas more closely than molecular gas, particularly in regions near the SNR shock front. Ratios of C II intensity to gas column density vary across the remnant, with peak values coinciding with regions of enhanced TeV γ-ray emission. To put the C II in a wider context, we examined pointings from the Herschel GOT C+ survey. Our analysis of the GOT C+ data shows no significant difference in the IC II/I12CO ratio for observations towards star formation regions, HII regions and SNRs. To assess the origin of carbon ionisation, we model C II emissivity using the photoionisation code CLOUDY. We find UV photons and CRs can produce comparable levels of C II emission, assuming low-energy CRs ( 1 GeV) are accelerated and trapped within the SNR shock. These results highlight the potential of C II as a tracer of CR ionisation and the importance of combining multi-wavelength observations to probe CR interactions in SNRs.

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Cite This Study

Thakur et al. (2026) studied this question.

synapsesocial.com/papers/6a782d7b2e1896536c840a4dhttps://doi.org/10.1093/mnras/stag1473
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