English

Particle acceleration in solar flares with imaging-spectroscopy in soft X-rays

Solar and Stellar Astrophysics 2024-05-28 v1 High Energy Astrophysical Phenomena Plasma Physics Space Physics

Abstract

Particles are accelerated to very high, non-thermal energies during explosive energy-release phenomena in space, solar, and astrophysical plasma environments. In the case of solar flares, it has been established that magnetic reconnection plays an important role for releasing the magnetic energy, but it remains unclear if or how magnetic reconnection can further explain particle acceleration during flares. Here we argue that the key issue is the lack of understanding of the precise context of particle acceleration but it can be overcome, in the near future, by performing imaging-spectroscopy in soft X-rays (SXRs). Such observations should be complemented by observations in other wavelengths such as extreme-ultraviolets (EUVs), microwaves, hard X-rays (HXRs), and gamma-rays. Also, numerical simulations will be crucial for further narrowing down the particle acceleration mechanism in the context revealed by the observations. Of all these efforts, imaging-spectroscopy in SXRs, if successfully applied to large limb flares, will be a milestone in our challenge of understanding electron acceleration in solar flares and beyond, i.e. the Plasma Universe.

Keywords

Cite

@article{arxiv.2306.04909,
  title  = {Particle acceleration in solar flares with imaging-spectroscopy in soft X-rays},
  author = {Mitsuo Oka and Amir Caspi and Bin Chen and Mark Cheung and James Drake and Dale Gary and Lindsay Glesener and Fan Guo and Hantao Ji and Xiaocan Li and Takuma Nakamura and Noriyuki Narukage and Katharine Reeves and Pascal Saint-Hilaire and Taro Sakao and Chengcai Shen and Amy Winebarger and Tom Woods},
  journal= {arXiv preprint arXiv:2306.04909},
  year   = {2024}
}

Comments

White paper submitted to the Decadal Survey for Solar and Space Physics (Heliophysics) 2024-2033; 10 pages, 2 figures