Showing posts with label inter-galactic medium (IGM). Show all posts
Showing posts with label inter-galactic medium (IGM). Show all posts

Tuesday, June 24, 2025

A New GPS for the Intergalactic Medium: Astronomers Have Found the Home Address for Universe's "Missing" Matter

A landmark study led by the Center for Astrophysics | Harvard & Smithsonian (CfA) has pinpointed the Universe’s “missing” matter using Fast Radio Bursts (FRBs)— brief, bright radio signals from distant galaxies— as a guide. This artist’s conception depicts a bright pulse of radio waves (the FRB) on its journey through the fog between galaxies, known as the intergalactic medium. Long wavelengths, shown in red, are slowed down compared to shorter, bluer wavelengths, allowing astronomers to “weigh” the otherwise invisible ordinary matter. Credit: Melissa Weiss/CfA




Cambridge, MA— A new landmark study has pinpointed the location of the Universe's "missing" matter, and detected the most distant fast radio burst (FRB) on record. Using FRBs as a guide, astronomers at the Center for Astrophysics | Harvard & Smithsonian (CfA) and Caltech have shown that more than three-quarters of the Universe's ordinary matter has been hiding in the thin gas between galaxies, marking a major step forward in understanding how matter interacts and behaves in the Universe. They’ve used the new data to make the first detailed measurement of ordinary matter distribution across the cosmic web.

For decades, scientists have known that at least half of the Universe's ordinary, or baryonic matter—composed primarily of protons—was unaccounted for. Previously, astronomers have used techniques including X-ray emission and ultraviolet observations of distant quasars to find hints of vast amounts of this missing mass in the form of very thin, warm gas in between galaxies. Because that matter exists as hot, low-density gas, it was largely invisible to most telescopes, leaving scientists to estimate but not confirm its amount or location.

Enter FRBs— brief, br ight radio signals from distant galaxies that scientists only recently showed could measure baryonic matter in the Universe, but until now could not find its location. In the new study, researchers analyzed 60 FRBs, ranging from ~11.74 million light years away—FRB20200120E in galaxy M81—to ~9.1 billion light years away—FRB 20230521B, the most distant FRB on record. This allowed them to pin down the missing matter to the space between galaxies, or the intergalactic medium (IGM).

"The decades-old 'missing baryon problem' was never about whether the matter existed," said Liam Connor, CfA astronomer and lead author of the new study. "It was always: Where is it? Now, thanks to FRBs, we know: three-quarters of it is floating between galaxies in the cosmic web." In other words, scientists now know the home address of the “missing” matter.

By measuring how much each FRB signal was slowed down as it passed through space, Connor and his team tracked the gas along its journey. "FRBs act as cosmic flashlights," Connor, who is also an assistant professor of astronomy at Harvard, said. "They shine through the fog of the intergalactic medium, and by precisely measuring how the light slows down, we can weigh that fog, even when it's too faint to see."

The results were clear: Approximately 76% of the Universe's baryonic matter lies in the IGM. About 15% resides in galaxy halos, and a small fraction is burrowed in stars or amid cold galactic gas.

This distribution lines up with predictions from advanced cosmological simulations, but has never been directly confirmed until now.

"It's a triumph of modern astronomy," said Vikram Ravi, an assistant professor of astronomy at Caltech and co-author of the paper. "We're beginning to see the Universe's structure and composition in a whole new light, thanks to FRBs. These brief flashes allow us to trace the otherwise invisible matter that fills the vast spaces between galaxies."

Finding the missing baryons isn’t just an exercise in building an address book or taking a census. Their distribution holds the key to unlocking deep mysteries about how galaxies form, how matter clumps in the Universe, and how light travels across billions of light-years.

"Baryons are pulled into galaxies by gravity, but supermassive black holes and exploding stars can blow them back out—like a cosmic thermostat cooling things down if the temperature gets too high," said Connor. "Our results show this feedback must be efficient, blasting gas out of galaxies and into the IGM."

And this is just the beginning for FRB cosmology. "We're entering a golden age," said Ravi, who also serves as the co-PI of Caltech’s Deep Synoptic Array-110 (DSA-110). "Next-generation radio telescopes like the DSA-2000 and the Canadian Hydrogen Observatory and Radio-transient Detector will detect thousands of FRBs, allowing us to map the cosmic web in incredible detail."/div>
The study is published today in Nature Astronomy.




Reference

Connor, L., et al. (2025). A gas-rich cosmic web revealed by the partitioning of the missing baryons. Nature Astronomy. doi:10.1038/s41550-025-02566-y



About the Center for Astrophysics | Harvard & Smithsonian

The Center for Astrophysics | Harvard & Smithsonian is a collaboration between Harvard and the Smithsonian designed to ask—and ultimately answer—humanity's greatest unresolved questions about the nature of the universe. The Center for Astrophysics is headquartered in Cambridge, MA, with research facilities across the U.S. and around the world.


Monday, May 03, 2021

Magnetogenesis around the first galaxies and its impact on galaxy formation


The influence of early magnetic fields
Evolution of the cosmic gas density (top left), magnetic field strength (top right), metal fraction (bottom left) and temperature (bottom right) in a slice through a cosmological simulation. Panels are split in four quadrants, each one showing the results from a different magnetic seed model. While the gas density, metal fraction and temperature are very similar in all models, the properties of magnetic fields change drastically for different seed processes.

Magnetic fields are ubiquitous in the Universe today, from stars to clusters of galaxies. Their origin, however, remains a mystery. MPA researchers have now simulated in great detail a variety of proposed mechanisms for magnetogenesis – i.e. how magnetic fields might be created – in high-redshift galaxies. They also studied their impact on the formation and evolution of galaxies, providing guidance to both future observations and simulations. Their work demonstrates that high-redshift galaxies may hold the key to understanding the origin of cosmic magnetic fields. It also provides the first-ever investigation on galactic scales of a novel magnetogenesis mechanism.

Magnetic fields have been detected in most cosmic structures in the nearby Universe, from individual stars to entire galaxies and galaxy clusters. These fields are often strong enough to play an important role in the evolution of the material in these structures. At the same time, the Cosmic Microwave Background radiation shows that magnetic fields at the origin of the Universe – if they existed at all – must have been extremely weak.

There are many physical mechanisms that can produce tiny magnetic fields during the evolution of galaxies. The chaotic motion of gas inside galaxies can then amplify these seed fields to the strength observed today. What is the most important source of seed fields for the evolution of the Universe? And are different mechanisms for magnetogenesis affecting the evolution of galaxies in the same way? Can we use galaxies to learn something about the origin of cosmic magnetic fields?

These questions prompted a small team of MPA researchers to perform a series of advanced numerical simulations using different recipes for the generation of initial seed magnetic fields: residual fields left over from the Big Bang, fields produced by supernovae, or different plasma physics processes (including a new type of ‘magnetic battery’ never studied before on these scales). These simulations are of two kinds. The first type follows the evolution of a representative part of the Universe, allowing researchers to study the creation and evolution of magnetic fields in and around a large number of cosmic structures (see movie). The second type of simulation focuses on a single forming galaxy, reaching a high level of accuracy and enabling the researchers to study the details of the physical processes inside the zoomed-in galaxy.

The simulations show that by today, the magnetic field at the very center of galaxies has lost every memory of its origin, but may have done so at different times in the past, depending on the exact physical process that created the original magnetic field (see figure). This opens up the possibility of using high-redshift galaxies to understand which magnetogenesis processes are dominant in the Universe.

Evolution of the mean magnetic field strength inside a certain radius (top: 1 kpc, middle: 10 kpc, bottom: 100 kpc) of a simulated galaxy. Each line shows the results for a different magnetic seed model. Today (right hand side of the plot) the strength is the same for all models, but this value is reached at different times by each model. © MPA 

The researchers also used simulations to investigate where in the Universe there may be hints about the origin of cosmic magnetic fields. They discovered that the diffuse and smooth gas filling the space between galaxies (known as the inter-galactic medium, or IGM) retains a memory of the original strength of its magnetic field. The IGM therefore may provide crucial information about the origin of cosmic magnetic fields.

Finally, this study simulates, for the first time within a realistic cosmological galaxy formation model, a new magnetic battery, which is at play at the ionizing radiation fronts surrounding the first galaxies. The researchers were able to show that this process in principle constitutes a viable mechanism for creating cosmic magnetic fields, although these are generally expected to be much weaker than those produced by competing physical processes active at the same time.

This new comprehensive study not only paves the way to more targeted observations of magnetic fields, but also demonstrates the crucial role that the diffuse IGM and high-redshift galaxies might play in pushing forward our understanding of cosmic magnetic fields.

Researchers: Enrico Garaldi (MPA), Rüdiger Pakmor (MPA), Volker Springel (MPA)

Author

Enrico Garaldi
Postdoc
Tel. 2255


Original publication

1. Garaldi, E., Pakmor, R., Springel V.
Magnetogenesis around the first galaxies: the impact of different field seeding processes on galaxy formation
MNRAS 502, 5726 (2021)


Source | DOI

 Source: Max Planck Institute for Astrophysics