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Surrounded by stardust

Researchers from Helmholtz-Zentrum Dresden-Rossendorf analyze ancient Antarctic ice to reveal the Local Interstellar Cloud's role in storing and supplying iron-60. The findings confirm a long-past stellar explosion as the source of this rare radioactive isotope, shedding new light on the origins of the Cloud.

SourceHelmholtz-Zentrum Dresden-Rossendorf·JournalPhysical Review Letters·TypeExperimental study·DateMay 13, 2026

Physicist recreates neutron star reaction, reveals how explosive stars forge elements

A Mississippi State physicist has achieved a significant scientific advancement by producing a direct laboratory measurement of a key nuclear reaction believed to occur during explosive bursts on neutron stars. These reactions forge heavier elements, including oxygen and iron, which are essential for planet formation and life.

SourceMississippi State University·JournalThe Astrophysical Journal·TypeExperimental study·DateMar 31, 2026

UCSB researcher bridges the worlds of general relativity and supernova astrophysics

A team of international researchers led by a UC Santa Barbara graduate student has confirmed a long-standing theory of stellar death by applying the principles of general relativity to a superluminous supernova. The discovery suggests that a magnetar, a rapidly spinning neutron star with a massive magnetic field, powers the supernova, ...

Where the elements come from

A team of researchers at Kyoto University used X-ray spectroscopy to measure the amount of chlorine and potassium inside a supernova remnant, revealing that these elements were created in intense environments deep inside stars. The study suggests that strong mixing inside massive stars can enhance the production of these elements.

SourceKyoto University·JournalNature Astronomy·TypeObservational study·DateDec 4, 2025

Webb Telescope unveils doomed star hidden in dust

A Northwestern University-led team of astronomers used NASA's James Webb Space Telescope to capture the most detailed glimpse yet of a doomed star before it exploded. The study reveals that massive red supergiants rarely explode due to thick clouds of dust, but JWST's new capabilities can pierce through the dust to spot these phenomena.

SourceNorthwestern University·JournalThe Astrophysical Journal Letters·TypeObservational study·DateOct 8, 2025

Supernovae: How to spot them at record speed

Astronomers have developed a protocol to detect supernovae within 24 hours of their explosion, using high-cadence sky surveys. The method involves rapid searches for candidates based on light signal absence and galaxy location, followed by spectroscopic observations to determine the type of supernova.

SourceSissa Medialab·JournalJournal of Cosmology and Astroparticle Physics·TypeData/statistical analysis·DateAug 19, 2025

International Gemini Observatory and SOAR discover surprising link between fast X-ray transients and the explosive death of massive stars

A team of astronomers found that fast X-ray transients are associated with the explosive death of massive stars, including supernovae. The International Gemini Observatory and SOAR telescope observed the event, providing insight into its mechanisms.

SourceAssociation of Universities for Research in Astronomy (AURA)·JournalThe Astrophysical Journal Letters·DateJul 7, 2025

Biggest boom since Big Bang: Hawaiʻi astronomers uncover most energetic explosions in universe

Astronomers have discovered the most energetic cosmic explosions yet discovered, named 'extreme nuclear transients' (ENTs), which occur when massive stars are torn apart after wandering too close to a supermassive black hole. ENTs release vast amounts of energy visible across enormous distances and remain luminous for years.

SourceUniversity of Hawaii at Manoa·JournalScience Advances·TypeObservational study·DateJun 4, 2025

Fresh wind blows from historical supernova

Researchers recreated the structure of supernova remnant SN 1181 using a new computer model, explaining its double shock formation. The study also found that high-speed stellar winds may have started blowing from its surface within the past 20-30 years.

SourceUniversity of Tokyo·JournalThe Astrophysical Journal·TypeComputational simulation/modeling·DateJul 5, 2024

Grasping the three-dimensional morphology of kilonovae

Researchers have created a three-dimensional computer simulation of the light emitted following a neutron star merger, producing results similar to an observed kilonova. The simulation takes into account various processes and material interactions, enabling predictions for any viewing direction.

SourceGSI Helmholtzzentrum für Schwerionenforschung GmbH·JournalThe Astrophysical Journal Letters·TypeComputational simulation/modeling·DateOct 18, 2023

Radio signal reveals supernova origin

Astronomers from Stockholm University detected the first radio emission of a Type Ia supernova, providing evidence for helium-rich circumstellar material. The discovery sheds light on the origins of these explosions and their role in measuring the expansion of the Universe.

SourceStockholm University·JournalNature·TypeObservational study·DateMay 17, 2023

Spotting the brightest gamma-ray burst ever recorded

The Swift Observatory team, led by Maia Williams, detected the brightest gamma-ray burst ever recorded, GRB 221009A. The burst was incredibly bright and had an afterglow that was more than 10 times brighter than any previous observation.

SourcePenn State·JournalThe Astrophysical Journal Letters·TypeObservational study·DateMar 28, 2023

Astronomers discover micronovae, a new kind of stellar explosion

A team of astronomers has discovered micronovae, extremely powerful events that occur on the surface of white dwarfs and can burn through billions of kilograms of material in a few hours. These new stellar explosions challenge our understanding of thermonuclear reactions in stars and may be more abundant than previously thought.

SourceESO·JournalNature·DateApr 20, 2022

Aiming for the sky and beyond: WVU helps net $2 million NSF award to build international gravitational wave detection network

A nearly $2 million NSF grant will accelerate the hunt for low-frequency gravitational waves using high-precision timing observations of exotic stars called millisecond pulsars. WVU's Maura McLaughlin is principal investigator on the project, which aims to discover new types of gravitational waves and expand the IPTA's reach globally.