Showing posts with label cold dark matter (CDM). Show all posts
Showing posts with label cold dark matter (CDM). Show all posts

Friday, March 06, 2026

Core Survey by NASA’s Roman Mission Will Unveil Universe’s Dark Side

This infographic describes the High-Latitude Wide-Area Survey that will be conducted by NASA’s Nancy Grace Roman Space Telescope. This observation program will cover more than 5,000 square degrees (about 12 percent of the sky) in just under a year and a half. Scientists will use the survey to analyze hundreds of millions of galaxies scattered across the cosmos that reveal clues about the universe’s shadowy underpinnings — dark matter and dark energy — as well as a wealth of other science topics. Credit: NASA’s Goddard Space Flight Center

This simulation shows the type of science astronomers will be able to do with future observations from NASA’s Nancy Grace Roman Space Telescope. The sequence demonstrates how the gravity of intervening galaxy clusters and dark matter can distort the light from farther objects, warping their appearance. More intervening material creates stronger distortions. By analyzing these features, astronomers can study elusive dark matter, which can only be measured indirectly through its gravitational effects on visible matter. As a bonus, the distortion acts like a telescope, enabling observations of extremely distant galaxies. Simulations like this one help astronomers understand what Roman’s future observations could tell us about the universe, and provide useful data to validate data analysis techniques. Caltech/IPAC/R. Hurt

This animation illustrates how small particles (in this case, sand) behave when exposed to different sound frequencies. In the very early universe, a cosmic “hum” created ripples in the primordial soup that filled space. Since the ripples were places where more matter was collected, like the rings of sand shown here, slightly more galaxies formed along them than elsewhere. As the universe expanded over billions of years, so did these structures. By comparing their size during different cosmic epochs, astronomers can trace the universe’s expansion. Nigel Stanford (used with permission)



The broadest planned survey by NASA’s upcoming Nancy Grace Roman Space Telescope will reveal hundreds of millions of galaxies scattered across the cosmos. After Roman launches as soon as this fall, scientists will use these sparkly beacons to study the universe’s shadowy underpinnings: dark matter and dark energy.

“We set out to build the ultimate wide-area infrared survey, and I think we accomplished that,” said Ryan Hickox, a professor at Dartmouth College in Hanover, New Hampshire, and co-chair of the committee that shaped the survey’s design. “We’ll use Roman’s enormous, deep 3D images to explore the fundamental nature of the universe, including its dark side.”

Roman’s High-Latitude Wide-Area Survey is one of the mission’s three core observation programs. It will cover more than 5,000 square degrees (about 12 percent of the sky) in just under a year and a half. Roman will look far from the dusty plane of our Milky Way galaxy (that’s what the “high-latitude” part of the survey name means), looking up and out of the galaxy rather than through it to get the clearest view of the distant cosmos.

“This survey is going to be a spectacular map of the cosmos, the first time we have Hubble-quality imaging over a large area of the sky,” said David Weinberg, an astronomy professor at Ohio State University in Columbus, who played a major role in devising the survey. “Even a single pointing with Roman needs a whole wall of 4K televisions to display at full resolution. Displaying the whole high-latitude survey at once would take half a million 4K TVs, enough to cover 200 football fields or the cliff face of El Capitan.”

The survey will combine the powers of imaging and spectroscopy to unveil a goldmine of galaxies strewn across cosmic time. Astronomers will use the survey’s data to explore invisible dark matter, detectable only via its gravitational effects on other objects, and the nature of dark energy — a pressure that seems to be speeding up the universe’s expansion.

“Cosmic acceleration is the biggest mystery in cosmology and maybe in all of physics,” Weinberg said. “Somehow, when we get to scales of billions of light years, gravity pushes rather than pulls. The Roman wide area survey will provide critical new clues to help us solve this mystery, because it allows us to measure the history of cosmic structure and the early expansion rate much more accurately than we can today.”

Weighing shadows

Anything that has mass warps space-time, the underlying fabric of the universe. Extremely massive things like clusters of galaxies warp space-time so much that they distort the appearance of background objects — a phenomenon called gravitational lensing.

“It’s like looking through a cosmic funhouse mirror,” Hickox said. “It can smear or duplicate distant galaxies, or if the alignment is just right, it can magnify them like a natural telescope.”

Roman’s view will be large and sharp enough to study this lensing effect on a small scale to see how clumps of dark matter warp the appearance of distant galaxies. Astronomers will create a detailed map of the large-scale distribution of matter — both seen and unseen — throughout the universe and fill in more of the gaps in our understanding of dark matter. Studying how structures grow over time will also help astronomers explore dark energy’s strength at various cosmic stages.

“The data analysis standards required to measure weak gravitational lensing are such that the astronomy community as a whole will benefit from very high-quality data over the full survey area, which will undoubtedly lead to unexpected discoveries,” said Olivier Doré, a senior research scientist at NASA’s Jet Propulsion Laboratory in Southern California, who leads a team focused on Roman imaging cosmology with the High-Latitude Wide-Area Survey. “This survey will accomplish much more than just revealing dark energy!” While NASA’s Hubble and James Webb space telescopes both also study gravitational lensing, the breakthrough with Roman is its large field of view.

“Weak lensing distorts galaxy shapes too subtly to see in any single galaxy — it’s invisible until you do a statistical analysis,” Hickox said. “Roman will see more than a billion galaxies in this survey, and we estimate about 600 million of them will be detailed enough for Roman to study these effects. So Roman will trace the growth of structure in the universe in 3D from shortly after the big bang to today, mapping dark matter more precisely than we’ve ever done before.”

Sounding out dark energy

Roman’s wide-area survey will also gather spectra from around 20 million galaxies. Analyzing spectra helps show how the universe expanded during different cosmic eras because when an object recedes, all of the light waves we receive from it are stretched out and shifted toward redder wavelengths — a phenomenon called redshift.

By determining how quickly galaxies are receding from us, carried by the relentless expansion of space, astronomers can find out how far away they are — the more a galaxy’s spectrum is redshifted, the farther away it is. Astronomers will use this phenomenon to make a 3D map of all the galaxies measured within the survey area out to about 11.5 billion light-years away.

That will reveal frozen echoes of ancient sound waves that once rippled through the primordial cosmic sea. For most of the universe’s first half-million years, the cosmos was a dense, almost uniform sea of plasma (charged particles).

Rare, tiny clumps attracted more matter toward themselves gravitationally. But it was too hot for the material to stick together, so it rebounded. This push and pull created waves of pressure—sound — that propagated through the plasma.

Over time, the universe cooled and the waves ceased, essentially freezing the ripples (called baryon acoustic oscillations) in place. Since the ripples were places where more matter was collected, slightly more galaxies formed along them than elsewhere. As the universe expanded over billions of years, so did these structures.

These rings act like a ruler for the universe. Today, they are about 500 million light-years wide. Roman will precisely measure their size across cosmic time, revealing how dark energy may have evolved.

Recent results from other telescopes hint that dark energy may be shifting in strength over cosmic time. “Roman will be able to make high precision tests that should tell us whether these hints are real deviations from our current standard model or not,” said Risa Wechsler, director of Stanford University’s KIPAC (Kavli Institute for Particle Astrophysics and Cosmology) in California and co-chair of the committee that shaped the survey’s design. “Roman’s imaging survey combined with its redshift survey give us new information about the evolution of the universe — both how it expands and how structures grow with time — that will help us understand what dark energy and gravity are doing at unprecedented precision.”

Altogether, Roman will help us understand the effects of dark energy 10 times more precisely than current measurements, helping discern between the leading theories that attempt to explain why the expansion of the universe is speeding up.

Because of the way Roman will survey the universe, it will reveal everything from small, rocky objects in our outer solar system and individual stars in nearby galaxies to galaxy mergers and black holes at the cosmic frontier over 13 billion years ago.

“Roman is exciting because it covers such a wide area with the image quality only available in space,” Wechsler said. “This enables a broad range of science, from things we can anticipate studying to discoveries that we haven’t thought of yet.”

The Nancy Grace Roman Space Telescope is managed at NASA’s Goddard Space Flight Center in Greenbelt, Maryland, with participation by NASA’s Jet Propulsion Laboratory in Southern California; Caltech/IPAC in Pasadena, California; the Space Telescope Science Institute in Baltimore; and a science team comprising scientists from various research institutions. The primary industrial partners are BAE Systems Inc. in Boulder, Colorado; L3Harris Technologies in Rochester, New York; and Teledyne Scientific & Imaging in Thousand Oaks, California.




By Ashley Balzer
NASA’s Goddard Space Flight Center, Greenbelt, Md.

Media contact:

Claire Andreoli
NASA’s Goddard Space Flight Center , Greenbelt, Md
301-286-1940


Friday, October 10, 2025

Astronomers 'image' a mysterious dark object in the distant Universe

Overlay of the infrared emission (black and white) with the radio emission (colour). The dark, low-mass object is located at the gap in the bright part of the arc on the right-hand side. © Credit: Keck/EVN/GBT/VLBA

The zoom in shows the pinch in the luminous radio arc, where the extra mass from the dark object is gravitationally ‘imaged’ using the sophisticated modelling algorithms of the team. The dark object is indicated by the white blob at the pinch point of the arc, but no light from it has so far been detected at optical, infrared or radio wavelengths. © Credit: Keck/EVN/GBT/VLBA



An international team of astronomers has found a low mass dark object in the distant Universe, not by directly observing any emitted light, but by detecting its tiny gravitational distortion of the light from another distant galaxy. This mysterious object has a mass of about one million times that of our Sun, and its discovery seems consistent with the current best theory about how galaxies like our own Milky Way formed.

“Hunting for dark objects that don't seem to emit any light is clearly challenging,” said Dr. Devon Powell at the Max Planck Institute for Astrophysics (MPA) and lead author of the study published in Nature Astronomy. “Since we can’t see them directly, we instead use very distant galaxies as a backlight to look for their gravitational imprints.”

Dark matter is an enigmatic form of matter not expected to emit light, yet it is essential to understanding how the rich tapestry of stars and galaxies we see in the night sky evolved. As a fundamental building block of the universe, a key question for astronomers is whether dark matter is smooth or clumpy, as this could reveal what it is made of. As dark matter cannot be seen, its properties can only be determined by observing the gravitational lensing effect, whereby the light from a more distant object is distorted and deflected by the gravity of the dark object.

The team used a network of telescopes from around the world, including the Green Bank Telescope (GBT), the Very Long Baseline Array (VLBA) and the European Very Long Baseline Interferometric Network (EVN). The data from this international network were correlated at the Joint Institute for VLBI ERIC (JIVE) in the Netherlands, forming an Earth-sized super-telescope that could capture the subtle signals of gravitational lensing by the dark object. They discovered that the object has a mass a million times greater than that of our Sun and is located in a distant region of space, approximately 10 billion light years from Earth, when the universe was only 6.5 billion years old.

This is the lowest mass object to be found using this technique, by a factor of about 100. To achieve this level of sensitivity, the team had to create a high-fidelity image of the sky using radio telescopes located around the world. Professor John McKean from the University of Groningen (RuG), the University of Pretoria (UP) and the South African Radio Astronomy Observatory (SARAO), who led the data collection and is the lead author of a companion paper, said: “From the first high-resolution image, we immediately saw a pinch in the gravitational arc, which is the tell-tale sign that we were onto something. Only another small clump of mass between us and the distant radio galaxy could cause this.”

To analyse the massive dataset, the team had to develop new modelling algorithms that could only be run on supercomputers. “The data are so large and complex that we had to develop new numerical approaches to model them. This was not straightforward as it had never been done before,” said Dr Simona Vegetti at MPA. “We expect every galaxy, including our own Milky Way, to be filled with dark matter clumps, but finding them and convincing the community that they exist requires a great deal of number crunching,” she continued. The team applied a special technique called gravitational imaging, which allowed them to ‘see’ the invisible dark matter clump by mapping its gravitational lensing effect against the radio-luminous arc.

“Given the sensitivity of our data, we were expecting to find at least one dark object, so our discovery is consistent with the so-called ‘cold dark matter theory’ on which much of our understanding of how galaxies form is based,” said Powell. “Having found one, the question now is whether we can find more and whether their number will still agree with the models.”

The team are now analysing the data further to better understand what the mysterious dark object could be, but they are also looking into other parts of the sky to see if they can find more examples of such low-mass dark objects using the same technique. If they continue to find such mysterious objects in other parts of the universe, and if they really turn out to be completely devoid of stars, then some theories of dark matter may be ruled out.




Additional Information:

Gravitational lensing: This is an astrophysical tool used by astronomers to measure the mass properties of structure in the Universe. It is a consequence of Einstein’s Theory of General Relativity, where mass in the Universe curves space. If the mass of the foreground lensing object (typically a galaxy or cluster of galaxies) is sufficiently dense, then the light from distant objects is distorted and multiple images are even seen. In the case of this system, called B1938+666, the foreground infrared luminous galaxy (seen at the centre of the ring), results in a beautiful Einstein ring of the distant galaxy. However, the distant galaxy is also bright at radio wavelengths, showing the beautiful multiple images and gravitational arcs (seen in red).

Very Long Baseline Interferometry: The radio observations were taken using a combination of radio telescopes that are combined to form a so-called Very Long Baseline Interferometer. This observational method allows astronomers to improve the imaging sharpness of the data and reveal very small fluctuations in the brightness that otherwise could not be seen. For example, the resolving power of the VLBI data is a factor 13 better than the infrared imaging from the W. M. Keck Telescope adaptive optics system (also shown in the figures in black and white). The telescopes used in the observations were the Green Bank Telescope and the Very Long Baseline Array of the National Radio Astronomy Observatory in the United States, and the telescopes of the European Very Long Baseline Interferometric Network.

Gravitational imaging: This is a novel method astronomers use to ‘see’ mass in the Universe even though it does not emit any light. This method uses the extended gravitational arcs to look for small aberrations that can only be caused by an additional, invisible component of mass. By combining this method and the exquisite high angular resolu,hrtion imaging from the VLBI data, the team were able to detect the presence of the lowest mass dark object currently measured.



Tuesday, November 22, 2016

Record-breaking Faint Satellite Galaxy of the Milky Way Discovered

An international team led by researchers from Tohoku University has found an extremely faint dwarf satellite galaxy of the Milky Way. The team's discovery is part of the ongoing Subaru Strategic Survey using Hyper Suprime-Cam. The satellite, named Virgo I, lies in the direction of the constellation Virgo. At the absolute magnitude of -0.8 in the optical waveband (Note), it may well be the faintest satellite galaxy yet found. Its discovery suggests the presence of a large number of yet-undetected dwarf satellites in the halo of the Milky Way and provides important insights into galaxy formation through hierarchical assembly of dark matter.

Figure 1: The position of Virgo I in the constellation of Virgo (left). The right panel shows a density map of Virgo I's member stars in a 0.1 deg x 0.1 deg area, based on the stars located inside the green zone in the color-magnitude diagram of Virgo I shown in Figure 4. The color range from blue -> white -> yellow -> red indicates increasing density. (Credit: Tohoku University/National Astronomical Observation of Japan)

Movie: An animation showing locations of Milky Way Galaxy's satellite galaxies, featuring the newly discovered Virgo I. An image captured from the animation is shown here. The computer graphics was created using Mitaka, a four-dimensional digital universe viewer. In the image from the Subaru Telescope, Green circles denote the member candidate stars that might belong to Virgo I. (Credit: NAOJ)


Currently, some 50 satellite galaxies to the Milky Way have been identified. About 40 of them are faint and diffuse and belong to the category of so-called "dwarf spheroidal galaxies" (Figure 2). Many recently discovered dwarf galaxies, especially those seen in systematic photometric surveys such as the Sloan Digital Sky Survey (SDSS) and the Dark Energy Survey (DES) are very faint with absolute luminosity in the optical waveband below -8 magnitude. These are so-called "ultra-faint dwarf galaxies". However, previous searches made use of telescopes with a diameter of 2.5 to 4 meters, so only satellites relatively close to the Sun or those with higher magnitudes were identified. Those that are more distant or faint ones in the halo of the Milky Way are yet to be detected (Figure 3).

Figure 2: Satellite galaxies associated with the Milky Way Galaxy. Squares are Large and Small Magellanic Clouds and circles are dwarf spheroidal galaxies.

Figure 3: False-color dwarf galaxy images taken with Subaru Telescope. Left: Leo II (V-band absolute magnitude MV = -11.9 mag). Middle: Boötes I (MV = -6.3 mag), where both images are taken with Suprime Cam. Right: HSC image of Virgo I (MV = -0.8 mag). Ultra-faint dwarf galaxies (Boötes I and Virgo I) are hard to detect from these images.


The combination of the large aperture of 8.2-meter Subaru Telescope and the large field-of-view Hyper Suprime-Cam (HSC) instrument is very powerful in this study. It enables an efficient search for very faint dwarf satellites over large areas of the sky. The first step in searching out a new dwarf galaxy is to identify an over density of stars in the sky, using photometric data. Next is to assess that the over dense appearance is not due to line-of-sight or accidental juxtapositions of unrelated dense fields, but is really a stellar system. The standard method for doing this is to look for a characteristic distribution of stars in the color-magnitude diagram (comparable to the Hertzsprung-Russell diagram (middle and left panels of Figure 4)). Stars in a general field shows no particular patterns in this diagram (right panel of Figure 4).

Figure 4: Stars in the color-magnitude diagram. Old stellar populations show a characteristic distribution along the curve seen in the diagram. From left to right: Boötes I, Segue I, Virgo I, and a general field outside Virgo I. The spatial distribution of the stars, which are located inside the green band for Virgo I, is shown in the right panel of Figure 1. Note that stars in a general field outside Virgo I (right panel) show no characteristic feature.


Finding Virgo I

Daisuke Homma, a graduate student at Tohoku University, found Virgo I under the guidance of his advisor, Masashi Chiba, and their international collaborators. "We have carefully examined the early data of the Subaru Strategic Survey with HSC and found an apparent over density of stars in Virgo with very high statistical significance, showing a characteristic pattern of an ancient stellar system in the color-magnitude diagram," he said. "Surprisingly, this is one of the faintest satellites, with absolute magnitude of -0.8 in the optical waveband. This is indeed a galaxy, because it is spatially extended with a radius of 124 light years – systematically larger than a globular cluster with comparable luminosity."

The faintest dwarf satellites identified so far was Segue I, discovered by SDSS (-1.5 mag) and Cetus II in DES (0.0 mag). Cetus II is yet to be confirmed, as it is too compact as a galaxy. Virgo I may ultimately turn out to be the faintest one ever discovered. It lies at a distance of 280,000 light years from the Sun, and such a remote galaxy with faint brightness has not been identified in previous surveys. It is beyond the reach of SDSS, which has previously surveyed the same area in the direction of the constellation Virgo (Figure 5).

Figure 5: The relation between the distance from the Sun and absolute magnitude in optical waveband for Milky Way satellites discovered so far. Virgo I is extremely faint and distant from the Sun and is beyond the reach of SDSS. Except for Virgo I, DES mostly discovers those outside SDSS's limit.


According to Chiba, the leader of this search project, the discovery has profound implications. "This discovery implies hundreds of faint dwarf satellites waiting to be discovered in the halo of the Milky Way," he said. "How many satellites are indeed there and what properties they have, will give us an important clue of understanding how the Milky Way formed and how dark matter contributed to it."

Using HSC to Trace Galaxy Formation 

Formation of galaxies like the Milky Way is thought to proceed through the hierarchical assembly of dark matter, forming dark halos, and through the subsequent infall of gas and star formation affected by gravity. Standard models of galaxy formation in the context of the so-called cold dark matter (CDM) theory predict the presence of hundreds of small dark halos orbiting in a Milky Way-sized dark halo and a comparable number of luminous satellite companions. However, only tens of satellites have ever been identified. This falls well short of a theoretical predicted number, which is part of the so-called "missing satellite problem". Astronomers may need to consider other types of dark matter than CDM or to invoke baryonic physics suppressing galaxy formation to explain the shortfall in the number of satellites. Another possibility is that they have seen only a fraction of all the satellites associated with the Milky Way due to various observational biases. The issue remains unsolved.

One of the motivations for the Subaru Strategic Survey using HSC is to do increase observations in the search for Milky Way satellites. The early data from this survey is what led to the discovery of Virgo I. This program will continue to explore much wider areas of the sky and is expected to find more satellites like Virgo I. These tiny companions to be discovered in the near future may tell us much more about history of the Milky Way's formation.

The team's finding is published in the Astrophysical Journal in its November 14, 2016 on-line version and November 20, 2016 in the printed version, Volume 832, Number 1. The title of the paper is "A New Milky Way Satellite Discovered in the Subaru/Hyper Suprime-Cam Survey" by D. Homma et al., which is also available in preprint from arXiv:1609.04346v2. This work is supported by a JSPS Grant-in-Aid for Scientific Research (B) (JP 25287062) and a MEXT Grant-in-Aid for Scientific Research on Innovative Areas (JP15H05889, JP16H01086).

Research Team: 

Daisuke Homma (Tohoku University, Japan), Masashi Chiba (Tohoku University, Japan), Sakurako Okamoto (Shanghai Astronomical Observatory, China), Yutaka Komiyama (National Astronomical Observatory of Japan (NAOJ), Japan), Masayuki Tanaka (NAOJ, Japan), Mikito Tanaka (Tohoku University, Japan), Miho N. Ishigaki (Kavli Institute for the Physics and Mathematics of the Universe (Kavli IPMU, WPI), University of Tokyo, Japan), Masayuki Akiyama (Tohoku University, Japan), Nobuo Arimoto (Subaru Telescope, NAOJ, USA), Jose A, Garmilla (Princeton University, USA), Robert H. Lupton (Princeton University, USA), Michael A. Strauss (Princeton University, USA), Hisanori Furusawa (NAOJ, Japan), Satoshi Miyazaki (NAOJ, Japan), Hitoshi Murayama (Kavli IPMU, WPI, University of Tokyo, Japan), Atsushi J. Nishizawa (Nagoya University, Japan), Masahiro Takada (Kavli IPMU, WPI, University of Tokyo, Japan), Tomonori Usuda (NAOJ, Japan), Shiang-Yu Wang (Institute of Astronomy and Astrophysics, Academia Sinica, Taiwan)

Note: 

For Comparison, the abolute magnitude in visible waveband for M31 (Andromeda Galaxy), Large Magellanic Cloud, and Small Magellanic Cloud are -21.77, -18.35 and -17.02, respectively, according to NASA/IPAC Extragalactic Database (http://ned.ipac.caltech.edu). 


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Tuesday, July 07, 2015

Sterile neutrinos, shielded candles and modified gravity: cosmology looks beyond the standard model

Comparison of Cold Dark Matter (CDM) and sterile neutrino simulations of Milky Way-like dark matter haloes (the invisible “skeleton" within which the galaxy will actually form). Credit: M Lovell/ICC Durham. Click  here for an enlarged image


What are the mysterious dark matter and dark energy that seem to account for so much of our Universe? Why is the Universe expanding?  For the past 30 years, most cosmologists have looked to the ‘standard model’ to answer these questions, and have had wide-ranging success in simulating formation in the universe and matching observational data.  But not everything quite fits the predictions. Are these discrepancies down to the interpretation of observations, or is a more fundamental rethink required? On Tuesday 7th July, a special session at the National Astronomy Meeting (NAM) 2015 has been convened for astronomers to take stock of the evidence and stimulate further investigation of cosmology beyond the standard model.  

The most popular candidate for the elusive particles that give the Universe extra mass is Cold Dark Matter (CDM).  CDM particles are thought to move slowly compared to the speed of light and interact very weakly with electromagnetic radiation. However, no one has managed to detect CDM to date.  Sownak Bose from Durham University’s Institute for Computational Cosmology (ICC) will present new predictions at NAM 2015 for a different candidate for dark matter, the sterile neutrino, which may have been detected recently.

“The neutrinos are sterile in that they interact even more weakly than ordinary neutrinos; their predominant interaction is via gravity,” explained Bose. “The key difference with CDM is that just after the Big Bang, sterile neutrinos would have had comparatively larger velocities than CDM and would thus have been able to move in random directions away from where they were born. Structures in the sterile neutrino model are smeared out, compared to CDM, and the abundance of structures on small scales is reduced.  By modelling how the Universe has evolved from that starting point and looking at the distribution of present-day structures, such as dwarf-mass galaxies, we can test which model -- sterile neutrinos or CDM -- fits best with observations.”

Last year, two independent groups detected an unexplained emission line at X-ray wavelengths in clusters of galaxies using the Chandra and XMM-Newton X-ray telescopes.  The energy of the line fits with predictions for the energies at which sterile neutrinos would decay over the lifetime of the Universe.  Bose and colleagues from the ICC in Durham are using sophisticated models of galaxy formation to investigate whether sterile neutrino corresponding to such a signal could help zero-in on the true identity of dark matter.

“Our models show that a sterile neutrino with a mass corresponding to the signal detected would also be able to pass many current astrophysical tests of dark matter," said Bose. “We may have seen the first evidence for sterile neutrinos and this would be hugely exciting."

However, not everyone believes that extra mass from dark matter is needed to explain observations. Indranil Banik and colleagues at the University of St Andrews believe that a modified theory of gravity may be the answer.  Banik and colleagues have constructed a detailed model predicting velocities of galaxies in the local group, which is dominated by the mass of our own Milky Way and the neighbouring Andromeda galaxy. 

“On large scales, our Universe is expanding – galaxies further away are going away from us faster. But on local scales, the picture is more confusing,” said Banik.  “We found that running our model in the context of Newtonian gravity did not match the observations very well. Some local group galaxies are travelling outwards so fast that it’s as if the Milky Way and Andromeda are exerting no gravitational pull at all!”

The St Andrews group suggests that these fast-moving outliers could be explained by a gravitational boost from a close encounter between the Milky Way and Andromeda about 9 billion years ago. The very fast motions of the two galaxies as they flew past each other, at around 600 kilometres per second, would have caused gravitational slingshot effects on other galaxies in the local group.

“This is like the trick spacecraft use to build up speed to reach the outer planets in our Solar System. Essentially, the big object – in this case the Milky Way or Andromeda – is slowed down slightly by the gravity from a passing object – the dwarf galaxy – which greatly speeds up as it's much lighter. This fits our observations – but not predictions with Newtonian gravity. This is just not strong enough to be compatible with such a close encounter between the Milky Way and Andromeda. Thus, we believe that our work favours a modified gravity theory and adds to a growing body of evidence from observations of galaxies,” said Banik.

The amount of dark energy in the Universe is also a matter of debate. The first evidence for dark energy – an energy field causing the expansion of the Universe to accelerate – came through measurements of Type Ia supernovae, which are used by astronomers as cosmic lighthouses to determine distances. However, there is now increasing evidence that Type Ia supernovae are not ‘standard candles’ and the precise brightness reached by these exploding white dwarf stars depends on the environment in the host galaxy.  Now, Dr Heather Campbell and colleagues at the University of Cambridge have used the largest sample of supernovae and host galaxies to date to study the relation between host galaxy and supernova luminosity.

“Understanding the effect of the properties of the host is critical if astronomers are to make the most precise measurements possible of dark energy,” said Campbell.  “More massive galaxies tend to have fainter supernovae.  If the galaxy properties are not accounted for properly, then the amount of dark energy in the Universe is underestimated. This work is crucial for future telescopes and space missions such as LSST and Euclid, which will attempt to make precision measurements of the expansion of the Universe.”

The session convener, Prof Peter Coles said, “Although cosmology has made great progress in recent years, many questions remain unanswered and indeed many questions unasked. This meeting is a timely opportunity to look at some of the gaps in our current understanding and some of the ideas that are being put forward for how those gaps might be filled.”



Images and captions

Comparison of Cold Dark Matter (CDM) and sterile neutrino simulations of Milky Way-like dark matter haloes (the invisible “skeleton" within which the galaxy will actually form). The "Milky Way" would form somewhere near the centre (the yellowish bit), with its satellite galaxies distributed among the many of smaller haloes around it. On the left is a visualisation of the Milky Way environment in a Universe dominated by CDM; on the right is the same object seen in a sterile neutrino dark matter Universe. While there are thousands of satellite galaxies in the CDM model, their abundance is greatly reduced in the sterile neutrino case. The net result is a “smoother” halo in the sterile neutrino case, compared to the “lumpy” CDM one. The simulations were created at the Institute for Computational Cosmology in Durham as part of the Aquarius supercomputing project undertaken by the Virgo consortium.

Is this what the night sky looked like billions of years ago? Cosmologists from St Andrews think that the motion of outlying galaxies in the Local Group could be explained by a close encounter between the Milky Way and Andromeda 9 billion years ago.Credit: NASA; ESA; Z. Levay and R. van der Marel, STScI; T. Hallas; and A. Mellinger

Type Ia supernovae, such as supernova 1994D in galaxy NGC 4526 (imaged here by the Hubble Space Telescope), are used as cosmic lighthouses by astronomers to measure distance in the Universe.  A team from the University of Cambridge has used the largest sample of supernovae and host galaxies to date to study the relation between host galaxy and the precise brightness of the supernova. Credit: NASA/ESA, The Hubble Key Project Team and The High-Z Supernova Search Team



Media contacts

Dr Robert Massey
Royal Astronomical Society
Mob: +44 (0)794 124 8035
rm@ras.org.uk

Ms Anita Heward
Royal Astronomical Society
Mob: +44 (0)7756 034 243
anitaheward@btinternet.com

Dr Sam Lindsay
Royal Astronomical Society
Mob: +44 (0) 7957 566 861
sl@ras.org.uk



Science contacts

Mr Sownak Bose
Institute for Computational Cosmology
Durham University
sownak.bose@durham.ac.uk

Dr Heather Campbell
Institute of Astronomy
University of Cambridge
hcc@ast.cam.ac.uk

Mr Indranil Banik
School of Physics and Astronomy
University of St Andrews
ib45@st-andrews.ac.uk

Prof Peter Coles
Head of School of Mathematical and Physical Sciences, Astronomy Centre
University of Sussex
P.Coles@sussex.ac.uk



Futher information

‘Dynamical History of the Local Group in LCDM’, Indranil Banik and Hongsheng Zhao. Submitted to Monthly Notices of the Royal Astronomical Society, June 2015.
http://arxiv.org/abs/1506.07569

Did Andromeda crash into the Milky Way 10 billion years ago?
http://www.ras.org.uk/news-and-press/224-news-2013/2303-did-andromeda-crash-into-the-milky-way-10-billion-years-ago



Note for editors


The Royal Astronomical Society National Astronomy Meeting (NAM 2015, http://nam2015.org) will take place in Llandudno, Wales, from 5-9 July. NAM 2015 will be held in conjunction with the annual meetings of the UK Solar Physics (UKSP) and Magnetosphere Ionosphere Solar-Terrestrial physics (MIST) groups. The conference is principally sponsored by the Royal Astronomical Society (RAS) and the Science and Technology Facilities Council (STFC). Follow the conference on Twitter via @RASNAM2015

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Monday, January 05, 2015

Starburst cycles in galaxies

Figure 1: The distribution of model galaxies, where the specific star formation rate is plotted versus the strength of the 4000-Angstrom-break. Model galaxies that have experienced continuous star formation histories are coloured in green, those that are currently undergoing bursts are coloured in blue and those that have experienced bursts in the past are coloured in red. One can clearly distinguish the three groups, even if there is some overlap. Plots of the specific star formation rate versus the Balmer absorption or emission line features show a similar picture. 

Figure 2: Postage stamp images of some of the low mass galaxies in the SDSS that are currently undergoing strong bursts. 

While it is well known that galaxies reside in halos of dark matter, there has been disagreement about the detailed distribution of dark matter between cosmological simulations and observations: the so-called "cuspy halo problem". Astrophysicists at the MPA have now used spectral features in a number of SDSS galaxies to show that strong starbursts occur frequently enough in low mass galaxies flatten the inner mass profiles of these systems, explaining why the theoretically predicted "cusps" are not observed. 

Cosmological simulations of the evolution of cold dark matter (CDM) show that the dark matter in galaxy halos forms cuspy distributions - with inner profiles that are too steep compared with observations. This is commonly referred to as the "cuspy halo problem". One solution to this problem, that was proposed early on, is as a galaxy loses mass in the form of explosions this can lead to an irreversible expansion of the orbits of stars and dark matter near the centre of the halo. The very dense cusps would then be spread out over a wider area. These conclusions, however, were based on simple analytic arguments and it was not clear whether this mechanism could in fact produce central density profiles in close agreement with observations. Later gas-dynamical simulations of dwarf galaxies indeed demonstrated that repeated gas outflows during bursts of star formation could in principle transfer enough energy to the dark matter component to flatten 'cuspy' central dark matter profiles. 

Nevertheless, it has remained unclear whether the energy requirements for flattening cuspy profiles are in line with the actual stellar populations and star formation histories of real low mass galaxies. In order to estimate how frequently starbursts occur as well as the amplitude range in star formation during a burst, it is necessary to analyze a large sample of galaxies that are intrinsically similar. 

High quality spectra provide a number of stellar features that are extremely useful as diagnostics of the star formation history of a galaxy. A primary feature is the strong break at 4000 Angstroms, caused by the blanket absorption of high energy radiation from metals in stellar atmospheres. This break becomes strong once young, hot, blue stars have evolved off the Main Sequence. In addition, absorption lines from the Balmer series, which are strongest in stars of spectral type A-F, are a diagnostic of the contribution of stars of intermediate ages to the total luminosity of the galaxy. 

Finally, Balmer emission lines arise in large, low-density clouds of gas where very recently formed stars emit copious amounts of ultraviolet light that ionize the surrounding gas (predominantly hydrogen). 

Used in concert, Kauffmann (2014) found that these spectral features allow one to clearly separate galaxies in three groups: those that are currently undergoing a burst of star formation, those that have formed their stars continuously and those that have experienced a burst in the past (Fig. 1). Applied to a large sample of galaxies from the Sloan Digital Sky Survey, the scientists were able to constrain the fraction of galaxies that were experiencing current starbursts, the mass of stars typically formed in these bursts, as well the duration of the starbursts. One could then investigate whether the burst frequency depended on the mass of the galaxy and whether starbursts were associated with changes in the internal structure of galaxies. 

The analysis showed that the fraction of the total star formation rate in galaxies with ongoing bursts was a strong function of stellar mass, declining from 0.85 for the smallest galaxies in the sample to 0.25 for galaxies with masses close to that of the Milky Way. Also the burst mass fraction, the half-mass formation times and the burst amplitudes and durations could be constrained. Finally, the scientists found that the central stellar densities in bursting low mass galaxies are reduced compared to their quiescent counterparts. 

These results are in remarkably good agreement with predictions of some of the recent hydrodynamical simulations and give further credence to the idea that the cuspy halo problem can be solved by energy input from multiple starbursts over the lifetime of the galaxy.

Guinevere Kauffmann


References:

Guinevere Kauffmann, Quantitative constraints on starburst cycles in galaxies with stellar masses in the range 108-1010 Msun, linkPfeilExtern.gifMNRAS (2014) 441 (3): 2717-2724