Spectropolarimetric detection of baryonic mass loading in a transient relativistic jet: application to the black hole X-ray binary Swift J1727.8 - 1613
A. K. Hughes, R. P. Fender, G. R. Sivakoff, F. J. Cowie, I. Heywood, J. H. Matthews, K. Savard, F. Carotenuto, T. D. Russell, C. M. Wood, M. C. Baglio, S. Corbel, S. E. Motta
astro-ph.HE
Submitted: 2026-07-06
Comments: 29 pages, 15 figures, and 1 table, with an additional 10-page appendix containing 7 figures and 2 tables. Accepted for publication in MNRAS
Code: https://github.com/AKHughes1994/polkat
License: http://creativecommons.org/licenses/by/4.0/
The gist: Radio emission during X-ray binary outbursts is dominated by synchrotron radiation from relativistic jets, but is usually studied through total-intensity diagnostics such as flux density, spectra,
Terminology
Abstract
Radio emission during X-ray binary outbursts is dominated by synchrotron radiation from relativistic jets, but is usually studied through total-intensity diagnostics such as flux density, spectra, variability, and proper motion. Radio spectropolarimetry provides a complementary probe of the magneto-ionic plasma through Faraday rotation and depolarisation. When the Faraday rotating material is local to the source, these effects can constrain the jet plasma composition and mass content, but this approach is rarely applied to transient jetted sources. We present MeerKAT L-band spectropolarimetry of the black hole X-ray binary during its 2023 outburst, focusing on the brightest radio flaring interval, when relativistic jets were being launched intermittently. Using multiple spectropolarimetric techniques, we identify transient Faraday-complex structure coincident with the major radio flares. The close temporal association with the flaring activity, together with the stability of the foreground Faraday screen, favours an origin local to the jet rather than in the ISM or in a separate local screen external to the emitting plasma. Since internal Faraday rotation is suppressed in a pure electron--positron plasma, the data favour a dominant electron--proton component. Interpreting the characteristic Faraday thickness as internal rotation, and anchoring the magnetic-field and size scales with synchrotron self-absorption arguments, we infer a characteristic Faraday-rotating mass of order M rot about10 21,g, corresponding to only a small fraction, f rot about10-3, of the accreted mass available during the flare. These results show that time-domain spectropolarimetry can turn transient Faraday complexity into a diagnostic of jet composition, mass loading, and plasma evolution in X-ray binary outbursts, and potentially other transient jetted sources.
Sources
- On the distance to the black hole X-ray binary Swift J1727.8$-$1613
- Optical outburst evolution of the transient black hole X-ray binary Swift J1727.8-1613: Disc response to jet ejections and late-outburst emergence of powerful disc winds
- Jets from X-ray binaries
- ThunderKAT: The MeerKAT Large Survey Project for Image-Plane Radio Transients
- Tricolour: an optimized SumThreshold flagger for MeerKAT
- Tracking the X-ray Polarization of the Black Hole Transient Swift J1727.8-1613 during a State Transition
- The Broadband X-ray Spectral Properties during the Rising Phases of the Outburst of the New Black Hole X-ray Binary Candidate Swift J1727.8-1613
- A Robust Analysis of QU-fitting Behavior for 800-1088 MHz and 1296-1440 MHz
- Dramatic Drop in the X-Ray Polarization of Swift J1727.8$-$1613 in the Soft Spectral State
- RM-Tools: Software for Analyzing Polarized Radio Spectra
- Swift J1727.8-1613 has the Largest Resolved Continuous Jet Ever Seen in an X-ray Binary
- The Ejection of Transient Jets in Swift J1727.8-1613 Revealed by Time-Dependent Visibility Modelling
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