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Mars’ induced magnetosphere can form under radial interplanetary magnetic field

  • Rentong Lin
  • , Shiyong Huang*
  • , Jingyi Zhou
  • , Yuming Wang
  • , Zhigang Yuan
  • , Eduard Dubinin
  • , Markus Fränz
  • , Haoyu Lu
  • , Kaijun Liu
  • , Lihui Chai
  • , Yihui Song
  • , Guoqiang Wang
  • , Yutian Chi
  • , Honghong Wu
  • , Kui Jiang
  • , Qiyang Xiong
  • , Zhuxuan Zou
  • *Corresponding author for this work
  • Wuhan University
  • University of Science and Technology of China
  • Southern University of Science and Technology
  • Max Planck Institute for Solar System Research
  • CAS - Institute of Geology and Geophysics
  • University of Chinese Academy of Sciences
  • Beihang University
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

The interaction between planetary atmosphere and stellar winds governs atmospheric evolution in unmagnetized planets. Generally, an interplanetary magnetic field (IMF) drapes around the planetary ionosphere, creating a magnetic barrier that deflects stellar winds and leads to the formation of an induced magnetosphere. However, whether an induced magnetosphere can form under radial IMF conditions where the IMF aligns with solar wind flow in our Solar System remains controversial. By analyzing joint observations from the Tianwen-1 orbiter and the Mars Atmosphere and Volatile Evolution mission combined with hybrid numerical simulations, we clearly demonstrate the formation of Mars’ induced magnetosphere during the radial IMF for the first time. This induced magnetosphere comprises a draped magnetic field and an induced magnetic field. Magnetic pressure buildup above the ionosphere surpasses incident solar wind pressure, which establishes a stable magnetic barrier. This finding indicates that the draped magnetic field still forms under a radial IMF. The formation of Mars’ induced magnetosphere under the radial IMF could be a general pattern for the interaction between the IMF and planetary atmosphere, which can be referred to terrestrial exoplanets within the close-in habitable zone of dwarf stars. This work clarifies the fundamental understanding of solar wind interactions with unmagnetized planets across diverse solar wind conditions.

Original languageEnglish
Article number101312
JournalInnovation
Volume7
Issue number6
DOIs
StatePublished - 1 Jun 2026

Keywords

  • Astrophysics
  • Mars
  • Planetary Sciences
  • induced magnetosphere
  • planetary physics

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