sözaltı news Science
Science
EN AZ
Turbulent times for star formation in Stephan's Quintet

Turbulent times for star formation in Stephan's Quintet

phys.org 04.09.2026 19:40 1 views
Star formation in galaxies is closely linked to molecular gas. In the distant past, when galaxy interactions were more common, these encounters compressed molecular gas, causing dense clouds to collapse under their own g

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Star formation in galaxies is closely linked to molecular gas. In the distant past, when galaxy interactions were more common, these encounters compressed molecular gas, causing dense clouds to collapse under their own gravity and form new stars.

However, a curious phenomenon occurs in some regions with abundant molecular gas. Despite having plenty of the raw material needed to make stars, they produce surprisingly few. Why a galactic collision can trigger star formation in some regions while suppressing it in others has long intrigued scientists.

To understand this phenomenon, a research team at Osaka Metropolitan University used the Atacama Compact Array, a network of radio telescopes in Chile, to create the first detailed map of molecular gas throughout Stephan's Quintet, a nearby group of interacting galaxies where some regions form stars far less efficiently than expected. The findings are published in The Astrophysical Journal. When the researchers compared the amount and motion of gas in different regions with how efficiently each region was forming stars, they found that regions where molecular gas was moving more violently tended to form stars much less efficiently, even in the presence of abundant gas.

"Interactions between galaxies can both compress and disperse molecular gas, creating dramatic differences in star formation activity," Misaki Yamamoto of the Graduate School of Science explained. "The findings pointed to turbulence as an important factor in regulating where stars can form." They propose a model in which turbulence generated by the galaxies' interactions prevents the gas from settling and collapsing under its own gravity. If the gas is highly turbulent, its motions spread out the gas, preventing parts of the cloud from settling, becoming concentrated and collapsing.

This creates fewer opportunities to form stars. "Star formation is one of the most fundamental processes in galaxy evolution. Studies like ours help refine our picture of the universe and encourage us to reflect on our place within it," Associate Professor Kazuyuki Muraoka said.

"Understanding how galaxy collisions and interactions in the early universe enhance or suppress star formation will give researchers a better tool to trace the history of galaxy evolution across cosmic time." Misaki Yamamoto et al, Molecular Gas Structure and Star Formation Diversity in Stephan's Quintet Revealed by ACA CO(1–0) Mapping, The Astrophysical Journal (2026). DOI: 10.3847/1538-4357/ae7b30 Journal information: Astrophysical Journal Provided by Osaka Metropolitan University BSc Life Sciences & Ecology. Microbiology lab background with pharmaceutical news experience in oil, gas, and renewable industries.

Extract — continue reading at the source.

Read full story