A new public code (SIRIO) predicts that reconnection-driven star-planet interaction can explain tentative radio detections from Proxima, YZ Ceti, and GJ 1151, while Alfvén-wing emission is too faint and free-free absorption is significant at high mass-loss rates.
Star-Planet Interactions in the Radio Domain: Prospect for Their Detection
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
All types of interaction of a magnetized plasma flow with an obstacle (magnetized or not) are considered, and those susceptible to produce a radio signature are identified. The role of the sub-Alfv\'enic or super-Alfv\'enic character of the flow is discussed. Known examples in the solar system are given, as well as extrapolations to star-planet plasma interactions. The dissipated power and the fraction that goes into radio waves are evaluated in the frame of the radio-magnetic scaling law, the theoretical bases and validity of which are discussed in the light of recent works. Then it is shown how radio signatures can be interpreted in the frame of the cyclotron-maser theory (developed for explaining the generation of solar system planetary auroral and satellite-induced radio emissions) for deducing many physical parameters of the system studied, including the planetary or stellar magnetic field. Recent detections of such radio signatures with new generation low-frequency radiotelescopes and future prospects are then outlined.
fields
astro-ph.EP 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
-
Modelling magnetic star-planet interaction in the iconic M dwarfs Proxima Centauri, YZ Ceti and GJ 1151
A new public code (SIRIO) predicts that reconnection-driven star-planet interaction can explain tentative radio detections from Proxima, YZ Ceti, and GJ 1151, while Alfvén-wing emission is too faint and free-free absorption is significant at high mass-loss rates.