Resolving spatial and temporal shock structures using LOFAR observations of type II radio bursts
arXiv:2502.16934 · doi:10.1051/0004-6361/202452775
Abstract
Collisionless shocks are one of the most powerful particle accelerators in the Universe. In the heliosphere, type II solar radio bursts are signatures of electrons accelerated by collisionless shocks launched at the Sun. Spectral observations of these bursts show a variety of fine structures often composing multiple type II lanes. The origin of these lanes and structures is not well understood and has been attributed to the inhomogeneous environment around the propagating shock. Here, we aim to determine the large-scale local structures near a coronal shock wave using high-resolution radio imaging observations of a complex type II radio burst observed on 3 October 2023. By using inteferometric imaging from the Low Frequency Array (LOFAR), combined with extreme ultraviolet observations, we investigate the origin of multiple type II lanes at low frequencies (30--80~MHz) relative to the propagating shock wave. We identify at least three radio sources at metric wavelengths corresponding to a multi-lane type II burst. The type II burst sources propagate outwards with a shock driven by a coronal mass ejection. We find a double radio source that exhibits increasing separation over time, consistent with the expansion rate of the global coronal shock. This suggests that the overall shock expansion is nearly self-similar, with acceleration hotspots forming at various times and splitting at a rate proportional to the shock's expansion. Our results show the importance of increased spatial resolution in determining either the small-scale spatial properties in coronal shocks or the structuring of the ambient medium. Possible shock corrugations or structuring of the upstream plasma at the scale of 10~km can act as hotspots for the acceleration of suprathermal electrons.
8 pages, 7 figures
References in corpus (14)
- LOFAR: The LOw-Frequency ARray
- WSClean: an implementation of a fast, generic wide-field imager for radio astronomy
- Systematic effects in LOFAR data: A unified calibration strategy
- Observations and Interpretation of a Low Coronal Shock Wave Observed in the EUV by the SDO/AIA
- The dynamic quasiperpendicular shock: Cluster discoveries
- Multiple Regions of Shock-accelerated Particles during a Solar Coronal Mass Ejection
- The effect of the ambient solar wind medium on a CME-driven shock and the associated gradual solar energetic particle event
- A type II solar radio burst without a coronal mass ejection
- Imaging-spectroscopy of a band-split type II solar radio burst with the Murchison Widefield Array
- Exploring the circular polarisation of low-frequency solar radio bursts with LOFAR
- Shock-accelerated electrons during the fast expansion of a coronal mass ejection
- Multi-wavelength Observations of a Metric Type-II Event
- Determining the acceleration regions of in situ electrons using remote radio and X-ray observations
- Estimating the lateral speed of a fast shock driven by a coronal mass ejection at the location of solar radio emissions