Star Clusters in the Ultraviolet
Annapurni Subramaniam, Samyaday Choudhury, Richard de Grijs, Vikrant V. Jadhav, Chengyuan Li, Snehalata Sahu, Kaushar Vaidya, Li Wang
astro-ph.GA, astro-ph.SR
Submitted: 2026-07-09
Comments: Accepted for publication in Space Science Reviews (part of ISSI-Beijing Workshop collection: Space-based Stellar Astrophysics in the Ultraviolet)
License: http://creativecommons.org/licenses/by/4.0/
The gist: Ultraviolet (UV) observations provide a powerful window into the hot and evolved stellar populations that shape the structure, evolution and integrated light of star clusters.
Terminology
Abstract
Ultraviolet (UV) observations provide a powerful window into the hot and evolved stellar populations that shape the structure, evolution and integrated light of star clusters. Because UV wavelengths are highly sensitive to massive main-sequence stars, blue straggler stars (BSS), extreme-horizontal branch (HB) stars, post-HB stars, interacting binaries and compact remnants, they probe key evolutionary processes that are inaccessible at optical and infrared wavelengths. This review synthesises five decades of UV studies of star clusters across the Milky Way, the Magellanic Clouds (MCs) and nearby galaxies, drawing on results from early space missions, wide-field surveys, and high-resolution imaging. In Galactic open clusters, UV studies have revealed compact companions - including white dwarfs, hot subdwarfs and stripped stars - and have established the mass-transfer origins of BSS, Blue Lurkers and yellow stragglers. In globular clusters, UV imaging has identified multiple stellar populations through UV-sensitive molecular bands, probed helium enrichment and mapped HB morphologies. Wide-field UVIT surveys have extended HST studies with homogeneous catalogues of HB and post-HB stars across entire clusters. In the MCs, UV observations have transformed our understanding of multiple populations, rotation-driven extended main-sequence turn-offs and the UV-dim phenomenon, while spectroscopic surveys have constrained massive-star evolution, stellar winds and binarity at low metallicity. UV mapping of the Magellanic Bridge has revealed ongoing massive-star formation in low-density tidal environments. Beyond the Local Group, UV studies of extragalactic clusters constrain star-formation histories, stellar feedback and population synthesis across galactic environments. Collectively, UV observations now form a cornerstone of star cluster astrophysics and will continue to do so with upcoming missions.
Sources
- HST Observations of Blue Straggler Stars in the Core of the Globular Cluster M3
- A New Catalog of Globular Clusters in the Milky Way
- Stellar Clusters in M31 from PHAT: Survey Overview and First Results
- Science with the Ultraviolet Explorer (UVEX)
- NASA Decadal Astrobiology Research and Exploration Strategy (NASA-DARES 2025) White Paper -- Habitable Worlds Observatory Living Worlds Science Cases: Research Gaps and Needs
- The Optical Gravitational Lensing Experiment. Multiple Cluster Candidates in the Large Magellanic Cloud
- Optical Gravitational Lensing Experiment. OGLE-2 -- the Second Phase of the OGLE Project
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