Stellar eruptions in the laboratory: First experimental evidence for their suppression in strong magnetic fields


Stellar eruptions in the laboratory: First experimental evidence for their suppression in strong magnetic fields
A coronal mass ejection of the sun, observed by the Solar and Heliospheric Observatory (SOHO). Such events occur regularly at the sun, but are very rarely observed for other stars. Credit: SOHO/ESA/NASA

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. This offers clues to why massive stellar eruptions are rarely observed on stars other than the sun.

Coronal mass ejections (CMEs) are giant expulsions of magnetized plasma from a star’s atmosphere into space. They 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.

Testing stellar eruptions in the lab

The study, published in Physical Review Letters, combines astrophysical simulations, high-energy laser-plasma experiments and advanced three-dimensional numerical plasma modeling. The results show that strong magnetic fields of active stars can completely suppress CMEs before they escape into space.

“The unique combination of theory, laboratory tests, and numerical simulations provides the first experimental evidence supporting a long-standing prediction that stellar magnetic fields can confine these large-scale eruptions,” said Julián D. Alvarado-Gomez, senior scientist in the Stellar Physics and Exoplanets research group at the Leibniz Institute for Astrophysics Potsdam (AIP). He contributed the astrophysical modeling that connects the laboratory experiments to real stellar environments.

Stellar eruptions in the laboratory: First experimental evidence for their suppression in strong magnetic fields
The laboratory set-up at the Ecole Polytechnique where the experiments for recreating stellar eruptions were performed. Credit: Julien Fuchs, Sorbonne Université, Ecole Polytechnique

Using scaling laws that faithfully reproduce astrophysical conditions, the international team generated laser-driven plasma flows in the laboratory to mimic the core of stellar CMEs. When exposed to relatively weak ambient magnetic fields, the plasma propagated freely. However, stronger magnetic fields caused the flow to fragment, become unstable and ultimately stop altogether.

“This actually came as a surprise when we were increasing the magnetic field strength and observed the change in behavior of the propagating plasma, but this is the essence of experimental discovery,” said Julien Fuchs, then senior scientist at LULI/CNRS in France and now professor at Technion in Israel.

A magnetic trap for plasma

Detailed numerical plasma simulations identified a kink instability as the physical mechanism responsible for disrupting the eruption. In the laboratory experiment, the eruption was triggered by the laser striking the target, which increased the target’s thermal pressure and caused the plasmoid to expand and move.

The kink instability occurred in the plasma flow when the external magnetic field was strong enough, causing the flow to bend and even travel backward. This helps explain why CMEs are so rare around stars: Although active stars produce enormous flares that should also generate powerful CMEs, the new results indicate that many of these eruptions may never escape the star, instead becoming trapped by the surrounding large-scale magnetic field.

Less hostile weather for exoplanets

The findings also have important implications for exoplanets: CMEs represent an extreme form of stellar space weather and can even strip planetary atmospheres or change their chemistry, thus affecting the long-term habitability of planets.

If many CMEs are magnetically suppressed, some exoplanets may be exposed to a less hostile space environment than previously anticipated, improving their prospects for retaining atmospheres over billions of years.

Publication details

Experimental evidence for coronal mass ejection suppression in strong stellar magnetic fields, Physical Review Letters (2026). DOI: 10.1103/hm32-h8q3. On arXiv: arxiv.org/abs/2604.16156

Who’s behind this story?


Sadie Harley

Sadie Harley

BSc Life Sciences & Ecology. Microbiology lab background with pharmaceutical news experience in oil, gas, and renewable industries.

Full profile →


Robert Egan

Robert Egan

Bachelor’s in mathematical biology, Master’s in creative writing. Well-traveled with unique perspectives on science and language.

Full profile →

Citation:
Stellar eruptions in the laboratory: First experimental evidence for their suppression in strong magnetic fields (2026, August 21)
retrieved 21 August 2026
from https://phys.org/news/2026-08-stellar-eruptions-laboratory-experimental-evidence.html

This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no
part may be reproduced without the written permission. The content is provided for information purposes only.





Source link