Stephen A. Fuselier

Observation of O+ Characteristics During the Terrestrial Alfvén Wing State Induced by the April 2023 Coronal Mass Ejection

Haoming Liang [1,2], Li-Jen Chen [2], Stephen A. Fuselier [3,4], Roman G. Gomez [3], Brandon Burkholder [2,5], Naoki Bessho [1,2], Harsha Gurram [1,2], Rachel C. Rice [1,2], Jason Shuster [6], Akhtar S. Ardakani [6]

Abstract

We report Magnetospheric Multiscale observations of oxygen ions (O+) during a coronal mass ejection in April 2023 when the solar wind was sub-Alfvénic and Alfvén wings formed. For the first time, O+ characteristics are studied at the contact region between the unshocked solar wind and the magnetosphere. The O+ ions show energies between 100s eV and ~30 keV. The possible sources are the ring current, the warm plasma cloak, and the ionosphere. The O+ ions exhibit bi-directional streaming along newly-formed closed field lines (CFLs), and dominantly anti-parallel on earlier-formed CFLs. Escaping O+ ions in the unshocked solar wind are observed. During the recovery phase, the O+ pitch-angle distribution associated with flux tubes shows dispersion, indicating potential loss to the solar wind. Our results show escaping as well as trapped O+ ions in the region where a magnetic cloud, an Alfvén wing, and magnetospheric field lines are mixed.

In situ evidence of ion acceleration between consecutive reconnection jet fronts

Filomena Catapano [1,2], Alessandro Retino [1], Gaetano Zimbardo [2], Alexandra Alexandrova [1], Ian J. Cohen [3], Drew L. Turner [3], Olivier Le Contel [1], Giulia Cozzani [4], Silvia Perri [2], Antonella Greco [2], Hugo Breuillard [1,5], Dominique Delcourt [5], Laurent Mirioni [1], Yuri Khotyaintsev [4], Andris Vaivads [4], Barbara L. Giles [6], Barry H. Mauk [3], Stephen A. Fuselier [7,8], Roy B. Torbert [9], Christopher T. Russell [10], Per A. Lindqvist [11], Robert E. Ergun [12], Thomas Moore [6], James L. Burch [7]

Abstract

Processes driven by unsteady reconnection can efficiently accelerate particles in many astrophysical plasmas. An example are the reconnection jet fronts in an outflow region. We present evidence of suprathermal ion acceleration between two consecutive reconnection jet fronts observed by the Magnetospheric Multiscale mission in the terrestrial magnetotail. An earthward propagating jet is approached by a second faster jet. Between the jets, the thermal ions are mostly perpendicular to magnetic field, are trapped and are gradually accelerated in the parallel direction up to 150 keV. Observations suggest that ions are predominantly accelerated by a Fermi-like mechanism in the contracting magnetic bottle formed between the two jet fronts. The ion acceleration mechanism is presumably efficient in other environments where jet fronts produced by variable rates of reconnection are common and where the interaction of multiple jet fronts can also develop a turbulent environment, e.g. in stellar and solar eruptions.