Characterizing the current systems in the Martian ionosphere

Author:

Rong Zhaojin1ORCID,Gao Jiawei1ORCID,Li Shibang2,Mittelholz Anna3,Persson Moa4,Shi Zhen5,Lu Haoyu2,Zhang Chi6ORCID,Wang Xiaodong7,Cui Jun8,Wei Yong9ORCID,Pan Yongxin1ORCID

Affiliation:

1. Institute of Geology and Geophysics, Chinese Academy of Sciences

2. School of Space and Environment, Beihang University

3. Department of Earth Sciences, ETH Zurich

4. Swedish Institute of Space Physics

5. Key Laboratory of Earth and Planetary Physics, Institute of Geology and Geophysics, Chinese Academy of Sciences

6. Center for Space Physics and Department of Astronomy, Boston University

7. Swedish Institute of Space Physics, Kiruna, Sweden

8. School of Atmospheric Sciences, Sun Yat-sen University

9. Institute of Geology and Geophysics, Chinese Academy of Sciences, China.

Abstract

Abstract When the solar wind encounters the ionosphere of an unmagnetized planet, it induces currents, forming an induced magnetosphere. These currents, along with their associated magnetic fields, play a crucial role in controlling the movement of charged particles and are essential for understanding the escape of planetary ions. Unlike the well-documented magnetospheric current systems, the ionospheric current systems on unmagnetized planets remain less understood, limiting our ability to quantify electrodynamic energy transfer. Here, using 8 years of data from the Mars Atmosphere and Volatile EvolutioN (MAVEN) mission, we provide the global map of the Martian ionospheric currents. We identified two distinct current systems within the ionosphere: one aligning with the solar wind electric field, with asymmetries between the west-east electric hemispheres and driven by the solar wind; and another characterized by two current vortices on the dayside, powered by the atmospheric neutral winds. Our findings indicate that the Martian ionospheric dynamics are influenced by both the neutral winds from below and the solar wind from above, emphasizing the intricate nature of current systems on unmagnetized planets.

Publisher

Research Square Platform LLC

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