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First experimental evidence shows strong stellar magnetic fields suppress coronal mass ejections

08.27.26 | Technion-Israel Institute of Technology
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An international team of astrophysicists and plasma physicists has provided the first experimental evidence that strong magnetic fields surrounding active stars can completely suppress coronal mass ejections (CMEs), helping to explain one of the longstanding mysteries of stellar astronomy: why CMEs are rarely observed on stars other than the Sun.

CMEs are giant eruptions of magnetized plasma that play a major role in shaping stellar evolution, driving mass and angular momentum loss, and influencing the space weather environments of orbiting planets. While they are routinely observed on the Sun, convincing detections around other stars have remained surprisingly scarce.

To investigate what that is, researchers combined astrophysical simulations, high-energy laser-plasma experiments, and advanced three-dimensional magnetohydrodynamic modeling. The team recreated key conditions of stellar CMEs in the laboratory and observed how plasma flows behaved under increasingly strong magnetic fields.

The experiments revealed a clear transition: under weaker magnetic fields, plasma streams propagated freely, while stronger fields caused the flows to become unstable, fragment, and eventually stop altogether. Numerical simulations identified magnetic kink instabilities as the mechanism responsible for disrupting the plasma and preventing its escape. The laboratory results closely matched astrophysical simulations, showing that a stellar magnetic field of about 100 gauss can effectively confine CME-like eruptions.

The study was led by an international collaboration that included researchers from the Leibniz Institute for Astrophysics Potsdam (AIP), Germany, and Prof. Julien Fuchs of École Polytechnique and the Technion-Israel Institute of Technology.

The research was supported by the European Research Council (ERC) Project GENESIS, ELI-NP, the Romanian Ministry of Research and Innovation, the U.S. National Science Foundation (NSF), and major French and European high-performance computing infrastructures.

Physical Review Letters

10.1103/hm32-h8q3

Experimental study

Not applicable

Experimental evidence for coronal mass ejection suppression in strong stellar magnetic fields

21-Aug-2026

Keywords

Article Information

Contact Information

Doron Shaham
Technion-Israel Institute of Technology
sdoron@technion.ac.il

Source

This article is based on a news release from Technion-Israel Institute of Technology. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

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APA:
Technion-Israel Institute of Technology. (2026, August 27). First experimental evidence shows strong stellar magnetic fields suppress coronal mass ejections. Brightsurf News. https://www.brightsurf.com/news/1GR6GG58/first-experimental-evidence-shows-strong-stellar-magnetic-fields-suppress-coronal-mass-ejections.html
MLA:
"First experimental evidence shows strong stellar magnetic fields suppress coronal mass ejections." Brightsurf News, Aug. 27 2026, https://www.brightsurf.com/news/1GR6GG58/first-experimental-evidence-shows-strong-stellar-magnetic-fields-suppress-coronal-mass-ejections.html.