The SDSS-V survey has released its twentieth public data release (DR20), providing a massive catalog of high-quality spectra of stars across the Milky Way. The dataset includes over two million total spectra, revealing temperatures, ages, and chemical compositions of stars.
The study provides the largest, most uniform spectroscopic follow-up of X-ray sources ever assembled, capturing tens of thousands of X-ray-emitting galaxy clusters. It reveals that rapidly growing giant black holes were surprisingly common in the early Universe and more 'hidden' black holes have been uncovered.
The Sloan Digital Sky Survey has released its 20th data set, featuring over three million spectra of stars and galaxies, as well as 18 new value-added catalogs. This release marks a significant expansion of the survey's efforts, integrating full all-sky panoptic spectroscopy across both hemispheres.
Researchers at Penn State simplify black hole mergers by applying thermodynamic principles, achieving accurate predictions of the final remnant's mass and spin. The maximum entropy conjecture shows that the merging black holes' energy and angular momentum map onto those of a sequence of hypothetical remnants, reaching a maximum entropy...
SourcePenn State·JournalPhysical Review Letters·DateJul 7, 2026
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Apple iPhone 17 Pro delivers top performance and advanced cameras for field documentation, data collection, and secure research communications.
Gravastars may form when a star collapses under its own mass, triggering the creation of a mini universe with dark energy. This equilibrium stabilizes the object, preventing it from becoming a black hole.
SourceGoethe University Frankfurt·JournalPhysical Review D·TypeComputational simulation/modeling·DateJun 11, 2026
New study by University of Southampton confirms the universe's expansion is still accelerating as previously found, debunking 2025 claims that the cosmos was slowing. The team re-evaluated data using Type Ia supernovae to calculate vast cosmic distances and found no error in their methods.
SourceUniversity of Southampton·JournalMonthly Notices of the Royal Astronomical Society·DateJun 10, 2026
New simulations show that a magnetic field can decrease the distance between forming binary protostars, explaining observed characteristics of Milky Way binary star systems. This process also gives insights into massive black hole evolution and merger formation.
SourceNational Institutes of Natural Sciences·JournalMonthly Notices of the Royal Astronomical Society·TypeObservational study·DateJun 4, 2026
Researchers at Kyushu University used 3D computer simulations to understand the physics behind hub-and-spoke patterns in star-forming regions. The study shows that oblique shocks create invisible channels guiding compressed gas into central filaments, forming the radial shape of baby stars' cradles.
SourceKyushu University·JournalThe Astrophysical Journal Letters·TypeComputational simulation/modeling·DateMay 28, 2026
Research suggests that some ultrahigh-energy cosmic rays could consist of atomic nuclei heavier than iron, losing energy more slowly as they travel through intergalactic space. This finding could help narrow down the possible sources of these particles and impact how we search for their origins.
SourcePenn State·JournalPhysical Review Letters·TypeComputational simulation/modeling·DateMay 7, 2026
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Three young scientists in Israel have been awarded the prestigious Blavatnik Awards for their innovative research in chemistry, cancer biology, and astrophysics. Sergey Semenov, Uri Ben-David, and Paz Beniamini will each receive US$100,000 to advance their projects on complex materials, cancer treatments, and extreme cosmic events.
Astronomers used TACC supercomputers to develop models of Little Red Dot formation, finding better agreement with Direct Collapse Black Hole theories. Researchers also analyzed JWST data using a 'genetic technique' to understand the history of these enigmatic cosmic objects.
SourceUniversity of Texas at Austin·JournalThe Astrophysical Journal·TypeComputational simulation/modeling·DateApr 16, 2026
Researchers at ISTA team present theoretical evidence that magnetic fields in stars can persist through all stages of evolution, emerging as 'fossil fields' at the surfaces of older remnants. This discovery sheds new light on our understanding of stellar magnetism and its relation to starquakes.
SourceInstitute of Science and Technology Austria·JournalAstronomy and Astrophysics·TypeComputational simulation/modeling·DateApr 14, 2026
A team of astrophysicists offers a new explanation for negative superhumps in cataclysmic variable star systems, proposing an eccentric accretion disk model. This theory explains the prevalence of negative superhumps across a wide range of binary star masses and may also explain positive superhumps in high mass ratio systems.
SourceUniversity of Nevada, Las Vegas·JournalThe Astrophysical Journal Letters·TypeObservational study·DateMar 23, 2026
The Blavatnik Awards recognize exceptional early-career achievements in Life Sciences, Chemical Sciences, and Physical Sciences & Engineering. The 2026 Laureates are Maxie M. Roessler, Thi Hoang Duong Nguyen, and Paola Pinilla.
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Three UK researchers will receive the top prize of £100,000 each, while six finalists will receive £30,000. The winners have developed groundbreaking techniques to study protein aggregates, detect fleeting electrons, and develop safer treatments for snakebites.
A team of physicists at UMass Amherst has proposed a new model for black holes, the 'dark charge' model, which explains high-energy neutrinos and solves cosmic mysteries. The model suggests that quasi-extremal primordial black holes, with a 'dark charge,' could be the missing link in explaining the universe's fundamental nature.
SourceUniversity of Massachusetts Amherst·JournalPhysical Review Letters·DateFeb 3, 2026
Researchers created the highest resolution map of dark matter, showing its interaction with normal matter through gravity. The new data from NASA's James Webb Space Telescope confirms previous research and provides new details about dark matter's influence on the Universe.
SourceDurham University·JournalNature Astronomy·TypeObservational study·DateJan 26, 2026
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Researchers developed a unified framework to measure spacetime fluctuations, enabling clear targets for experiments. The study provides measurable signatures for different categories of fluctuations, expanding the possibilities for testing quantum-gravity predictions.
SourceUniversity of Warwick·JournalNature Communications·TypeComputational simulation/modeling·DateJan 21, 2026
A new study has created a comprehensive model of neutrino mapping, revealing that most stars in the Milky Way generate and emit these ghost particles. The research provides valuable insights into the universe, offering a unique way to explore cosmic phenomena.
SourceUniversity of Copenhagen·JournalPhysical Review D·DateJan 8, 2026
The Atacama Cosmology Telescope's sixth and final data release confirms the 'Hubble tension' and rules out extended cosmological models, providing new insights into the Universe's evolution and current state. ACT's observations offer a cleaner starting point for future research.
SourceSissa Medialab·JournalJournal of Cosmology and Astroparticle Physics·TypeData/statistical analysis·DateNov 24, 2025
The team discovered a flat, spherical gas and dust structure resembling a diamond ring, formed by a massive star's radiation and winds. The 'Diamond Ring' is around 20 light years in diameter and shines strongly in infrared light.
SourceUniversity of Cologne·JournalAstronomy and Astrophysics·TypeObservational study·DateNov 17, 2025
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Apple Watch Series 11 (GPS, 46mm) tracks health metrics and safety alerts during long observing sessions, fieldwork, and remote expeditions.
Researchers at RIKEN successfully simulated the Milky Way Galaxy with over 100 billion individual stars, far surpassing previous state-of-the-art models. This achievement demonstrates the power of AI-accelerated simulations in tackling complex multi-scale problems in astrophysics and beyond.
A study from Bielefeld University reveals that the solar system is moving more than three times faster than predicted by current models. This deviation was detected using data from radio galaxies, which emit strong radio waves and can penetrate dust and gas.
SourceBielefeld University·JournalPhysical Review Letters·TypeObservational study·DateNov 13, 2025
Physicists compare black hole shadow images to alternative theories of gravity, showing differences in extreme cosmic objects. High-resolution measurements could test Einstein's theory and confirm or refute exotic possibilities.
SourceGoethe University Frankfurt·JournalNature Astronomy·TypeComputational simulation/modeling·DateNov 5, 2025
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Researchers at Goethe University Frankfurt used complex simulations to study the origin of powerful jets emitted by black holes. They discovered that magnetic reconnection is involved in extracting rotational energy and powering these jets.
SourceGoethe University Frankfurt·JournalThe Astrophysical Journal Letters·TypeComputational simulation/modeling·DateOct 6, 2025
The institute aims to advance fundamental and applied science through interdisciplinary collaboration, with a focus on the unification of gravity and quantum theory. By pursuing the quantum-gravity crossover, researchers hope to develop new technologies and shape humanity's future.
Researchers from Tel Aviv University predict that detecting radio waves from the cosmic dark ages can help resolve the nature of dark matter. The study uses computer simulations to show that dense clumps of dark matter formed throughout the Universe, pulling in hydrogen gas and causing it to emit intense radio waves.
The Laser Interferometer Gravitational-Wave Observatory (LIGO) has made a significant milestone in its 10-year history, detecting over 300 black hole mergers and surpassing previous records. The improved sensitivity of LIGO's detectors allows for the detection of fainter sources, enabling scientists to test fundamental laws of physics.
SourceCalifornia Institute of Technology·JournalPhysical Review Letters·DateSep 10, 2025
Scientists have developed a new device to probe the existence of dark matter particles across a wide mass range below one mega electron volt. The QROCODILE experiment uses an improved superconducting nanowire single-photon detector to detect changes in direction, which can help filter out non-dark-matter events.
SourceUniversity of Zurich·JournalPhysical Review Letters·TypeExperimental study·DateSep 8, 2025
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Physicists from the University of Copenhagen have discovered a step-like signature that resembles the signature of an elusive axion particle using galaxy clusters. This method has greatly increased what we know about axions, allowing researchers to narrow down the space where it can be found.
SourceUniversity of Copenhagen·JournalNature Astronomy·DateAug 15, 2025
Researchers used infrared images to spot bright objects, then applied the 'dropout' technique to confirm their nature. The study could challenge current ideas about galaxy formation in the early universe if confirmed.
SourceUniversity of Missouri-Columbia·JournalThe Astrophysical Journal·DateAug 12, 2025
Researchers observed a flare caused by a star falling onto a black hole and surviving the encounter. The discovery suggests that these flares may be part of a longer, more complex story about supermassive black holes.
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Researchers propose a novel method for detecting dark matter using thorium-229 nucleus properties, with potential to detect forces 10 trillion times weaker than gravity. The new approach aims to identify minute deviations in the absorption spectrum of thorium-229 to reveal dark matter's influence.
SourceWeizmann Institute of Science·JournalPhysical Review X·DateJul 14, 2025
The LIGO-Virgo-KAGRA Collaboration has detected the merger of two massive black holes, producing a final black hole approximately 225 times the mass of our Sun. The signal presents a challenge to current astrophysical models and requires advanced theoretical tools to interpret.
Researchers successfully demonstrate Fermi acceleration mechanism with ultracold atoms, unlocking new understanding of cosmic rays behavior. The technology has the potential for high-precision control over particle acceleration and opens new possibilities for investigating phenomena relevant to high-energy astrophysics.
SourceUniversity of Birmingham·JournalPhysical Review Letters·TypeObservational study·DateJul 9, 2025
Researchers used machine learning to simulate galaxy evolution and supernova explosions, achieving speeds four times faster than supercomputers. This breakthrough enables the study of galaxy origins, including the creation of the Milky Way's elements essential for life.
SourceRIKEN·JournalThe Astrophysical Journal·DateJul 1, 2025
Researchers at Dartmouth College propose a new theory on the origin of dark matter, suggesting it could have formed from high-energy massless particles that rapidly condensed into cold, heavy particles. The theory can be tested using existing observational data, including the Cosmic Microwave Background radiation.
SourceDartmouth College·JournalPhysical Review Letters·TypeComputational simulation/modeling·DateMay 14, 2025
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Researchers used massive simulations to study galactic-type turbulence, finding that magnetic fields alter energy cascades and suppress small-scale motions. The findings could reshape our understanding of the Galaxy's turbulent structure and its impact on space weather.
SourcePrinceton University·JournalNature Astronomy·TypeComputational simulation/modeling·DateMay 13, 2025
Researchers explore alternative models of black holes without singularities, which could be distinguishable from standard black holes through subtle deviations in predictions. Observational tests using sophisticated instruments and different channels may reveal clues about internal structure.
SourceSissa Medialab·JournalJournal of Cosmology and Astroparticle Physics·TypeLiterature review·DateMay 6, 2025
Scientists use FAST to analyze FRB 20201124A and discover 90% circular polarization, a record high. The findings contradict theoretical models, suggesting pulsar-like mechanisms may be more plausible.
SourceScience China Press·JournalNational Science Review·TypeObservational study·DateApr 8, 2025
Researchers propose a revolutionary link between time and dark energy, suggesting that the mysterious force driving the universe's expansion may be used to measure time. The study could pave the way for groundbreaking new fundamental theories and breakthroughs in our understanding of the universe.
SourceUniversity of Sheffield·JournalPhysical Review Letters·TypeObservational study·DateMar 12, 2025
Researchers have discovered a strong connection between the long ringdown phase of post-merger gravitational waves and the properties of dense regions in neutron-star cores. Analyzing this phase can significantly reduce uncertainties in the equation of state at very high densities, shedding light on what neutron stars are made of.
SourceGoethe University Frankfurt·JournalNature Communications·TypeComputational simulation/modeling·DateFeb 6, 2025
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The EHT Collaboration unveils a new analysis of the supermassive black hole at the heart of galaxy M87, combining observations from 2017 and 2018. The study confirms the presence of a luminous ring with a shifted brightest region, indicating turbulent accretion disk dynamics.
SourceGoethe University Frankfurt·JournalAstronomy and Astrophysics·TypeObservational study·DateJan 23, 2025
Researchers from NTU Singapore have developed a new crystal structure that shows naturally existing particles can behave like axions, promising to detect dark matter. The findings could lay the groundwork for understanding cosmic phenomena and uncovering the universe's greatest mysteries.
SourceNanyang Technological University·JournalScience·TypeExperimental study·DateJan 9, 2025
Researchers found a core-collapsing self-interacting dark matter subhalo is responsible for the peculiar spur and gap features observed in the GD-1 stellar stream. This discovery provides insights into the nature of dark matter itself and offers a new explanation for the observed perturbations.
SourceUniversity of California - Riverside·JournalThe Astrophysical Journal Letters·TypeComputational simulation/modeling·DateJan 6, 2025
A study of over 26,000 white dwarf stars confirmed that hotter stars are slightly larger due to higher temperatures. This finding brings scientists closer to understanding the effects of extreme gravity and potentially detecting dark matter particles.
SourceJohns Hopkins University·JournalThe Astrophysical Journal·TypeObservational study·DateDec 18, 2024
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A new paper in JCAP proposes a way to test the anthropic principle, which suggests the universe is fine-tuned for life. The proposal involves confirming three conditions: cosmic inflation, axion existence, and dark matter not being made of axions.
SourceSissa Medialab·JournalJournal of Cosmology and Astroparticle Physics·TypeMeta-analysis·DateDec 9, 2024
The Crab Pulsar features a unique zebra pattern due to diffraction in the electromagnetic pulses caused by its dense plasma. Researchers have proposed various emission mechanisms, but none have convincingly explained the observed patterns until now.
SourceUniversity of Kansas·JournalPhysical Review Letters·DateNov 18, 2024
Astronomers have discovered patterns of regularity within the chaotic three-body problem, which is a fundamental challenge in physics. The researcher's findings suggest that certain configurations of three massive objects can lead to predictable outcomes, offering new insights into astrophysics and the behavior of black holes.
SourceUniversity of Copenhagen - Faculty of Science·JournalAstronomy and Astrophysics·DateOct 10, 2024
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Simulations predict that the violent deaths of rapidly rotating stars can create detectable gravitational waves, which could aid understanding of collapsars and black holes. The signals from these events are strong enough to be picked up by LIGO and may already exist in datasets.
SourceSimons Foundation·JournalThe Astrophysical Journal Letters·TypeComputational simulation/modeling·DateAug 22, 2024
A new study published in Physical Review Letters suggests that nanohertz gravitational waves may not originate from supercool first-order phase transitions. Researchers found that such transitions would struggle to complete, shifting the frequency of the waves away from nanohertz frequencies.
SourceXi'an Jiaotong-Liverpool University·JournalPhysical Review Letters·TypeComputational simulation/modeling·DateAug 14, 2024
Researchers used hydrogen to track dark matter's presence in the universe, revealing a tension between observations and theoretical predictions. The findings suggest that an unknown particle or new physics may be responsible for this discrepancy.
SourceSissa Medialab·JournalJournal of Cosmology and Astroparticle Physics·TypeData/statistical analysis·DateJul 24, 2024
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A new dataset from the VELOCE project has collected over 18,000 high-precision measurements of Cepheid radial velocities, providing insights into the structure and evolution of these stars. The data reveal complex patterns in pulsations that cannot be explained by traditional models, suggesting intricate processes within the stars.
SourceEcole Polytechnique Fédérale de Lausanne·JournalAstronomy and Astrophysics·DateJun 14, 2024
Scientists have developed a new method to efficiently extract information from galaxy surveys, enabling the use of high-order information in future studies. This breakthrough has significant implications for understanding dark energy, dark matter, and gravity.
SourceChinese Academy of Sciences Headquarters·JournalCommunications Physics·DateApr 19, 2024
The study suggests that graphitisation could provide simplicity and a clean environment required for life, theorising that an object roughly the size of the moon hit early Earth around 4.3 billion years ago, depositing iron and other metals that reacted with water to form useful nitrogen-containing compounds.
SourceUniversity of Cambridge·JournalLife·TypeComputational simulation/modeling·DateApr 18, 2024
Researchers discovered a new class of plasma oscillations that can exhibit extraordinary features, enabling innovative advancements in particle acceleration and fusion. This finding has significant implications for achieving clean-burning commercial fusion energy.
SourceUniversity of Rochester·JournalPhysical Review Letters·DateMar 15, 2024
Research suggests that planetary migration is the key to explaining the mysterious gap in the size distribution of super-Earths. Simulations show that sub-Neptunes' evolution contributes to the observed radius valley, while rocky planets 'shrink' by losing their atmosphere.
SourceMax Planck Institute for Astronomy·JournalNature Astronomy·TypeComputational simulation/modeling·DateFeb 9, 2024
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A new unified model confirms that some long-lasting gamma-ray bursts are created in the aftermath of cosmic mergers that spawn an infant black hole surrounded by a giant disk of natal material. The findings explain recently observed long GRBs that astronomers couldn't link to collapsing stars.
SourceSimons Foundation·JournalThe Astrophysical Journal Letters·TypeComputational simulation/modeling·DateNov 29, 2023
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
Scientists propose that pulsars could detect dark matter by observing a subtle additional glow. If axions are produced in strong electromagnetic fields around pulsars, they could convert into observable light.
SourceUniversiteit van Amsterdam·JournalPhysical Review Letters·TypeComputational simulation/modeling·DateOct 6, 2023
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