PUI Heating in the Supersonic Solar Wind

Parisa Mostafavi, Laxman Adhikari, Bishwas L. Shrestha, Gary P. Zank, Merav Opher, Matthew E. Hill, Heather A. Elliott, Pontus C. Brandt, Ralph L. McNutt, David J. McComas, Andrew R. Poppe, Elena Provornikova, Romina Nikoukar, Peter Kollmann, S. Alan Stern, Kelsi N. Singer, Anne Verbiscer, Joel Parker

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

The outer heliosphere is profoundly influenced by nonthermal energetic pickup ions (PUIs), which dominate the internal pressure of the solar wind beyond ~10 au, surpassing both solar wind and magnetic pressures. PUIs are formed mostly through charge exchange between interstellar neutral atoms and solar wind ions. This study examines the apparent heating of PUIs in the distant supersonic solar wind before reaching the heliospheric termination shock. New Horizons’ SWAP observations reveal an unexpected PUI temperature change between 2015 and 2020, with a notable bump in PUI temperature. Concurrent observations from the ACE and Wind spacecraft at 1 au indicate a ~50% increase in solar wind dynamic pressure at the end of 2014. Our simulation suggests that the bump observed in the PUI temperature by New Horizons is largely associated with the enhanced solar wind dynamic pressure observed at 1 au. Additional PUI temperature enhancements imply the involvement of other heating mechanisms. Analysis of New Horizons data reveals a correlation between shocks and PUI heating during the declining phase of the solar cycle. Using a PUI-mediated plasma model, we explore shock structures and PUI heating, finding that shocks preferentially heat PUIs over the thermal solar wind in the outer heliosphere. We also show that the broad shock thickness observed by New Horizons is due to the large diffusion coefficient associated with PUIs. Shocks and compression regions in the distant supersonic solar wind lead to elevated PUI temperatures and thus they can increase the production of energetic neutral atoms with large energy.

Original languageEnglish (US)
Article number222
JournalAstrophysical Journal
Volume979
Issue number2
DOIs
StatePublished - Feb 1 2025

All Science Journal Classification (ASJC) codes

  • Astronomy and Astrophysics
  • Space and Planetary Science

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