Cosmology

Cosmological Hint: Dark Matter and Neutrinos May Interact

Cosmological Hint: Dark Matter and Neutrinos May Interact

Combining observations of the cosmic microwave background radiation and the weak gravitational lensing effect found a preference of almost three standard deviations for a model in which momentum is transferred between dark matter and neutrinos. The interaction may explain why matter in the universe
James Webb observation of the protocluster SPT2349-56 and the galaxy C26 with a long gas tail

Ancient galaxy caught as environment robs it of raw material for star formation

Observations by the James Webb Space Telescope and the ALMA array have revealed a massive galaxy in a young protocluster, only about 1.4 billion years after the Big Bang, with more than half of its reservoir of cold gas already pushed out.
Simulation of a quasar powered by matter falling into a supermassive black hole

Euclid Space Telescope Discovers the Earliest Quasars Ever Observed

The Euclid Space Telescope has helped discover 31 quasars from the early universe, 14 of them at redshifts of 7 or greater. The two most distant were observed as they were about 670 million years after the Big Bang, and again
Diagram of a contracting universe undergoing a cosmic jump, leaving behind remnant black holes

Black holes from before the Big Bang? Cosmological model suggests ancient location “fossils”

Theoretical research suggests that the universe went through a phase of contraction before it began to expand. Black holes and gravitational waves that survived the transition may explain some of the dark matter and the early appearance of black holes.
Comparison between a simulation of the universe in the ΛCDM model and a simulation including massive neutrinos and corrected gravity.

Artificial intelligence learned the laws of the universe – then struggled to identify new physics

Researchers trained a neural network first on the standard cosmological model and then on models that included massive neutrinos, corrected gravity, and primitive non-Gaussianity. The method saved expensive simulations, but in some cases caused “transfer”
Gravitational waves. Illustration: depositphotos.com

What do gravitational wave detectors really measure when the entire universe changes?

Researchers have developed a computational framework that connects cosmological relativity with what a real detector actually measures. The method could aid in the search for Joule gravitational waves and faint signals from the early universe.
Hubble Space Telescope image of Supernova 1994D (SN1994D) in the galaxy NGC 4526. Supernova SN 1994D is the bright spot on the lower left. Credit: NASA/ESA.

The universe is still accelerating: New study rejects claim that cosmic expansion has begun to slow down

An international team, including Nobel laureates Adam Ries and Brian Schmidt, found that the claim that dark energy is weakening was based on an incorrect age estimate of supernovae and the omission of a common correction in the mass
Space-time network. Illustration: depositphotos.com

Tiny black holes may form from space-time 'crystals'

Researchers have presented a mathematical formula for a theoretical process in which space-time organizes itself into a cyclical pattern. A small addition of energy could transform this unstable state into a tiny black hole.
Astronomers have discovered a massive galaxy from the early universe that appears to not be rotating. (Artist's impression). Illustration: depositphotos.com

Webb Space Telescope Detects Ancient, Nearly Rotationless Galaxy

A massive galaxy formed less than two billion years after the Big Bang does not show an orderly rotation, contrary to expectations from models of galaxy formation. An ancient merger with another galaxy may have disrupted its motion.
A slice of the COSMOS-Web map, showing galaxies across nearly 14 billion years of the universe's history. The vertex on the left indicates the current time; moving outward, each galaxy is located at its own distance in cosmic time, until you reach a time when the universe was less than a billion years old. Light yellow areas show the dense clusters and filaments of the cosmic web, and dark areas indicate the nearly empty spaces between them. Credit: Hossein Hatamnia, UC Riverside

James Webb Space Telescope reveals sharpest map of the cosmic web

The COSMOS-Web survey, the largest survey ever conducted with the James Webb Space Telescope, allows astronomers to track galaxies within nebulae, clusters, and cosmic voids across nearly 13.7 billion years of history.
A thin slice of the map created by DESI's five-year survey shows galaxies and quasars above and below the plane of the Milky Way. Credit: Claire Lamman/DESI collaboration

The largest 3D map of the universe has been completed and will help study dark energy

A record-breaking 3D map of the universe has been completed, giving scientists a new way to study dark energy. The vast data could reveal surprising changes in how the universe is expanding.
The experimental equipment built and used by the students. Credit: Nabil Salama and Agit Akgümüs

Students built a dark matter detector and set new experimental boundaries

A compact experiment at the University of Hamburg searched for axions, one of the main candidates for dark matter, and showed that even small arrays can contribute to particle physics.
The motion of galaxy clusters reveals the strength of gravity on a scale of hundreds of millions of light years. Credit: Lucy Reading / Simons Foundation

Newton's law of gravity faces unprecedented cosmic test

Hubble voltage. Illustration: NSF Noir Lab

Extremely precise measurement of the expansion rate of the universe strengthens the “Hubble tension”

An international collaboration has once again found that the local universe is expanding faster than the standard cosmological model predicts, possibly hinting at new physics.
Weak gravitational waves from the early universe may hint at how dark matter first formed. Illustration: depositphotos.com

Gravitational waves from the early universe may have created dark matter

A new paper suggests that a weak background of stochastic gravitational waves from the early universe created low-mass particles that may have later become the dark matter that shapes galaxies and large cosmic structures.
Graphics: N. BURGESS/SCIENCE; Data: NASA; Satellite Image: STEVEN RODNEY/UNIVERSITY OF SOUTH CAROLINA; GABRIEL BRAMMER/COSMIC DAWN CENTER/NIELS BOHR INSTITUTE/UNIVERSITY OF COPENHAGEN; Image Processing: JOSEPH DEPASQUALE/STSCI

Cosmic illusions may decide the debate over the rate of expansion of the universe

An expected reappearance of the supernova SN Requiem, seen repeatedly due to gravitational lensing, may provide a third way to measure the Hubble constant.
Dark matter. Illustration: depositphotos.com

The mystery deepens: New model suggests dark matter is not made up of one type of particle

A study published in Science Bulletin suggests that self-interacting two-component dark matter could explain both the sparse cores of dwarf galaxies and the dense gravitational lensing structures observed in the universe.
Black hole. Illustration: depositphotos.com

Is the universe infinite? What does science really know about the shape of the universe?

Measurements of the cosmic microwave background radiation indicate that the observable universe is approximately flat, but scientists still do not know whether the entire universe is infinite, finite without an edge, or has a more complex topological structure.
Astronomers have discovered an unusual gravitationally stimulated supernova whose light traveled more than 10 billion years to reach Earth. Illustration: depositphotos.com

Rare Excited Supernova May Help Decipher the Rate of Expansion of the Universe

The event SN 2025wny, seen through gravitational lensing after a journey of more than ten billion years, may provide a new measurement of the Hubble constant and contribute to the understanding of dark energy.
Sunset, just before the Vera Rubin Telescope begins nighttime operations. Photo courtesy of NSF

The Rubin Observatory's giant camera is underway, and its goal is: "To answer one question - what is the universe?"

The Vera Rubin Observatory has begun publishing its first discoveries – supernovae, variable stars and asteroids – ahead of the launch of the Legacy Survey of Space and Time (LSST), a ten-year sky survey.
The universe is full of dark energy. Illustration: Avi Blizovsky via DALEE

The cosmic spaces are not empty, they are filled with dark energy.

Even the most sparse regions of the universe are not "nothing." According to quantum field theory, they are filled with vacuum energy, and it is there that the expansion of the universe accelerates.
A combination of infrared and X-rays reveals a nascent cluster with hot gas – already a billion years after the Big Bang. From the article in Nature.

Galaxy cluster at the beginning of the universe: Webb and Chandra found hot gas earlier than expected

The two space telescopes revealed a nascent galaxy cluster (“protocluster”) in which a hot gas cloud emitting X-rays also appears, a sign of “virial heating” and advanced gravitational collapse – already when the universe was about a billion years old.
Computer simulation showing baby black holes growing in a young galaxy in the early universe. Credit: Dr John Regan

New simulations offer a solution: This is how black holes grew quickly to become supermassive in the early universe

Simulation study claims that the young universe was chaotic and rich in dense gas, allowing even “light seeds” to undergo “binge” episodes that exceeded conventional growth limits
Suyanov-Zeldovich effect. Credit: Lingxiao Yuan

Extremely hot intracluster gas discovered in young galaxy cluster – earlier than predicted

ALMA measurement and the Sonyaev-Zeldovich effect indicate “overheating” about 1.4 billion years after the Big Bang, challenging models of galaxy cluster formation
A gravitational lens distorts objects behind it. Illustration: depositphotos.com

Mysterious object challenges simple models of dark matter

An unusual observational case: an object with a mass of a million solar masses, which has no clear “parallel” among known objects, may be the result of a collision between different types of dark matter
A gravitational lens distorts objects behind it. Illustration: depositphotos.com

Mysterious object challenges accepted dark matter models

Gravitational lensing analysis points to a body “the size of a million suns” with a structure unlike any known object – and may hint that dark matter is not as “smooth” as we thought
Image of the expansion of the universe created by artificial intelligence. Credit: ZARM, Universität Bremen (AI generated)

What if dark energy doesn't exist? New theory could rewrite the expansion of the universe

Researchers suggest that the accelerating expansion of the universe could be due to the geometry of space-time and the extension of the theory of gravity – without adding a “mysterious element” to the equations to match observations
The world in 2050. Illustration: Avi Blizovsky via DALEE.

The journal "Nature" looks to 2050: Nuclear fusion, Mars, and "lightless" laboratories – and it all depends on politics

The prestigious journal marks the decisive junctures: the climate crisis and the response to it, the race for artificial intelligence infrastructure, questions of public trust and science funding, and the ability to transform breakthroughs into systems that work at scale.
Dark matter distorts space-time. Illustration: depositphotos.com

New code allows simulation of the “hidden life” of dark matter within galactic halos

Researchers at the Perimeter Institute have developed KiSS-SIDM, a computational tool that bridges intermediate regimes in a model of self-interacting dark matter, and may improve the understanding of core collapse and even the formation of black holes.
Artist's impression of material spiraling inward, pulled by the strong gravity of a central supermassive black hole, forming an "accretion disk." Credit: Dimitrios Sakkas (tomakti), Antonis Georgakakis, Angel Ruiz, Maria Chira (NOA)

New observations: The relationship between UV and X-ray radiation in quasars has changed over cosmic time

International research finds that the long-standing correlation between UV and X-ray emissions from quasars is not constant throughout the history of the universe – a hint that the structure of the accretion disk and “corona” around supermassive black holes is not universal
Faint radio glow from the early universe may hold hidden clues about the first stars. Illustration: depositphotos.com

13-billion-year-old radio signal may reveal the first stars in the universe

An international team led by the University of Cambridge shows that the 21-centimeter signal from hydrogen atoms at cosmic dawn is sensitive to the mass of the first stars (Population III), and that the REACH and SKA radio observatories will be able to map how the universe evolved.
Type Ia supernova - is the universe slowing down? Illustration: depositphotos.com

Is the universe slowing down?

The Big Bang Theory. Illustration: depositphotos.com

Study: “Cannibal Stars” and Primordial Black Holes Could Have Formed in the First Second After the Big Bang

A cosmological model suggests that during a brief matter-dominant period immediately after inflation, halos of particles formed that gravitationally-thermally collapsed to form primordial black holes (PBHs), boson stars, and “cannibal stars” that prevent mutual annihilation of particles —
Neutrinos are created as a byproduct of nuclear fusion, such as that which occurs inside stars. Illustration: depositphotos.com

Will neutrinos reveal why the universe exists?

A collaboration between two leading neutrino experiments, NOVA in the US and T2K in Japan, paints the most precise picture yet of neutrino oscillations – and may come closer to explaining why the universe is full of matter and not
Researchers have built a small but powerful detector to find gravitational waves in a hidden frequency range. The discovery could reveal unseen black hole activity and echoes from the early universe. Illustration: depositphotos.com

The small device that will open a new window to the universe: a compact gravitational wave detector for the millihertz range

UK researchers present a desktop detector based on optical resonators and atomic clocks, which opens access to the “middle domain” of gravitational waves and could reveal binary white dwarfs, black hole mergers and a stochastic background – and a bridge
Does dark matter change the color of light? Illustration: depositphotos.com

According to a new theory, we've been looking for dark matter the wrong way.

But the York researchers say the light may change its color slightly depending on the type of dark matter it encounters. If this theory is confirmed, this effect could provide a new way to study the hidden component.
LIGO Gravitational Wave Observatory in the US, credit: caltech

A new model of the Big Bang incorporates gravitational waves and seeks to change our understanding of the beginning of the universe.

Scientists propose that gravitational waves shaped the universe. Their model challenges the cosmic inflation model
Baryon acoustic oscillations represent the sound of the Big Bang. Credit: Gabriela Secara, Perimeter Institute, CC BY-SA

New measurements suggest we may be living in a giant "cosmic void"

New research suggests we may reside in a local cosmic void – a region devoid of galaxies and matter – which could explain the rapid expansion of the universe relative to the Standard Model predictions and provide a solution
An artist's impression of CAPERS-LRD-z9, home to the earliest confirmed black hole. The supermassive black hole at its center is thought to be surrounded by a thick cloud of gas, giving the galaxy its distinctive red color. Credit: Erik Zumalt, The University of Texas at Austin

Webb Telescope Discovers Oldest Black Hole – Breaking Universe Records

Astronomers using the James Webb Space Telescope have detected the oldest confirmed supermassive black hole, found in a rare "Little Red Spot" galaxy and formed just 500 million years after the Big Bang.
Prof. Ron Margolin, Tel Aviv University. Screenshot.

Podcast: The Great Mysteries of Science – Is There Intelligence in the Universe? (Episode 4)

Prof. Ron Margolin of Tel Aviv University on meaning, the laws of nature, and whether the universe is “directed” — from Tel Aviv 360, Tel Aviv University’s podcast channel (Hebrew only)
Image of Stokes curves and a black hole. Credit: KyotoU / Taiga Miyachi

Scientists discover spiral symphony hidden in black hole oscillations

Precise analysis reveals complex frequency patterns and quasi-normal modes that had been lost to sight—and suggests a new way to improve the interpretation of black hole “resonance sounds” and the accuracy of gravitational wave measurements
An artist's illustration of the mechanism proposed by Professor Stefano Profumo, in which quantum effects near the rapidly expanding cosmic horizon after the Big Bang gravitationally create dark matter particles. Credit: Stefano Profumo

Two bold theories may finally explain dark matter

Baryon Acoustic Oscillations (BAOs) – the “sound of the Big Bang” – support the idea of a local vacuum. Credit: Gabriela Saccara, Perimeter Institute

New hypothesis: Earth may be inside a giant cosmic bubble that distorts the universe

According to a new hypothesis by astronomers, Earth — and the entire Milky Way galaxy — may reside inside a giant, matter-poor hollow region about a billion light-years across. This region creates the illusion of
Artist's impression of the Milky Way galaxy. Credit: NASA/JPL-Caltech

The Milky Way may be surrounded by a hundred previously unobserved hidden galaxies

Researchers at Durham University have predicted using advanced simulations that there are dozens of faint galaxies orbiting the Milky Way – and new telescopes may soon detect them.
This Hubble image of IC 758 shows a peaceful galaxy – but beneath its calm appearance lies the remains of SN 1999bg, the explosive death of a massive star. Credit: ESA/Hubble & NASA, C. Kilpatrick

Quiet Galaxy, Explosive Secret: The Supernova Surprise of the Serene Spiral

A seemingly peaceful galaxy hides the dramatic consequences of the violent death of a massive star.
A perfect cosmic circle captured by Webb shows a distant spiral galaxy twisted around a closer elliptical galaxy. This Einstein ring provides a glimpse into the warped nature of spacetime. Credit: ESA/Webb, NASA & CSA, G.

Webb captures perfect Einstein ring that reveals hidden galaxy

A stunning new image from the James Webb Space Telescope reveals a cosmic illusion called an Einstein ring, where the light from a distant galaxy is distorted into a perfect circle by the gravity of a closer galaxy.
Spiral galaxies photographed by Webb rotating in the same direction relative to the Milky Way (in red) and in the opposite direction (in blue). Credit: Shamir, Lior, Monthly Notices of the Royal Astronomical Society, 2025 under CC BY 4.0

Does the mystery of galaxy rotation challenge the Big Bang assumptions?

A new study has found that two-thirds of distant galaxies rotate clockwise, a surprising imbalance compared to the random distribution that would have been expected.
The composition of the universe. Illustration: depositphotos.com

Hidden change in dark energy could rewrite the laws of physics

Dark energy may not be constant after all. DESI analysis of millions of galaxies shows signs that it may be evolving, suggesting a huge shift in cosmology