Friday, October 20, 2023

‘S’ is for ‘Spiral’, ‘AB’ is for … ‘Weakly Barred’

A close-in view of a spiral galaxy. It is seen face-on, showing its circular shape and tightly winding spiral arms. The galaxy glows brightly in the centre and dims to cool colours towards the edge. Dark, faint filaments of dust and brightly glowing, pink and orange bubbles of star formation mark the face of the galaxy.Credit: ESA/Hubble & NASA, R. Chandar, J. Lee and the PHANGS-HST team

This glittering image shows the spiral galaxy IC 5332, which lies about 30 million light-years away in the constellation Sculptor, and has an almost face-on orientation to Earth. To explain what is meant by ‘face-on’, it is helpful to visualise a spiral galaxy as an (extremely) large disc. If the galaxy is oriented so that it appears circular and disc-shaped from our perspective here on Earth, then we can say that it is ‘face-on’. In contrast, if it is oriented so that it appears squashed and oval-shaped, then we would say that it is ‘edge-on’. The key thing is that the same galaxy would look extremely different from our perspective depending on whether it was face-on or edge-on as seen from Earth. Check out these previous Hubble Pictures of the Week for examples of another face-on spiral galaxy and an almost edge-on spiral galaxy.

IC 5332 is designated as an SABc-type galaxy in the De Vaucouleurs system of galaxy classification. The ‘S’ is straightforward, identifying it as a spiral galaxy, which it clearly is, given the well-defined arms of bright stars and darker dust that curl outwards from the galaxy’s dense and bright core. The ‘AB’ is a little more complex. It means that the galaxy is weakly barred, which refers to the shape of the galaxy’s centre. The majority of spiral galaxies do not spiral out from a single point, but rather from an elongated bar-type structure. SAB galaxies — which are also known as intermediate spiral galaxies — do not have a clear bar-shape at their core, but also do not spiral out from a single point, instead falling somewhere in between. The lowercase ‘c’ describes how tightly wound the spiral arms are: ‘a’ would indicate very tightly wound, and ‘d’ very loosely wound. Thus, IC 5332 is quite an intermediate spiral galaxy on many fronts: weakly barred, with quite loosely wound arms, and almost completely face-on!


Source:  ESA/Hubble/potw


Thursday, October 19, 2023

NASA’s Webb Detects Tiny Quartz Crystals in Clouds of Hot Gas Giant

Exoplanet WASP-17 b (Artist's Concept)
Credits: Artwork: NASA, ESA, CSA, Ralf Crawford (STScI)

Exoplanet WASP-17 b (MIRI Transmission Spectrum)
Credits: Illustration: NASA, ESA, CSA, Ralf Crawford (STScI)
Science: David Grant (University of Bristol), Hannah R. Wakeford (University of Bristol), Nikole Lewis (Cornell University)




Researchers using NASA’s James Webb Space Telescope have detected evidence for quartz nanocrystals in the high-altitude clouds of WASP-17 b, a hot Jupiter exoplanet 1,300 light-years from Earth. The detection, which was uniquely possible with MIRI (Webb’s Mid-Infrared Instrument), marks the first time that silica (SiO2) particles have been spotted in an exoplanet atmosphere.

“We were thrilled!” said David Grant, a researcher at the University of Bristol in the UK and first author on a paper being published today in the Astrophysical Journal Letters . “We knew from Hubble observations that there must be aerosols – tiny particles making up clouds or haze – in WASP-17 b’s atmosphere, but we didn’t expect them to be made of quartz.”

Silicates (minerals rich in silicon and oxygen) make up the bulk of Earth and the Moon as well as other rocky objects in our solar system, and are extremely common across the galaxy. But the silicate grains previously detected in the atmospheres of exoplanets and brown dwarfs appear to be made of magnesium-rich silicates like olivine and pyroxene, not quartz alone – which is pure SiO2.

The result from this team, which also includes researchers from NASA’s Ames Research Center and NASA’s Goddard Space Flight Center, puts a new spin on our understanding of how exoplanet clouds form and evolve. “We fully expected to see magnesium silicates,” said co-author Hannah Wakeford, also from the University of Bristol. “But what we’re seeing instead are likely the building blocks of those, the tiny ‘seed’ particles needed to form the larger silicate grains we detect in cooler exoplanets and brown dwarfs.”

Detecting Subtle Variations

With a volume more than seven times that of Jupiter and a mass less than one-half of Jupiter, WASP-17 b is one of the largest and puffiest known exoplanets. This, along with its short orbital period of just 3.7 Earth-days, makes the planet ideal for transmission spectroscopy: a technique that involves measuring the filtering and scattering effects of a planet’s atmosphere on starlight.

Webb observed the WASP-17 system for nearly 10 hours, collecting more than 1,275 brightness measurements of 5- to 12-micron mid-infrared light as the planet crossed its star. By subtracting the brightness of individual wavelengths of light that reached the telescope when the planet was in front of the star from those of the star on its own, the team was able to calculate the amount of each wavelength blocked by the planet’s atmosphere.

What emerged was an unexpected “bump” at 8.6 microns, a feature that would not be expected if the clouds were made of magnesium silicates or other possible high-temperature aerosols like aluminum oxide, but which makes perfect sense if they are made of quartz.

Crystals, Clouds, and Winds

While these crystals are probably similar in shape to the pointy hexagonal prisms found in geodes and gem shops on Earth, each one is only about 10 nanometers across – one-millionth of one centimeter.

“Hubble data actually played a key role in constraining the size of these particles,” explained co-author Nikole Lewis of Cornell University, who leads the Webb Guaranteed Time Observation (GTO) program designed to help build a three-dimensional view of a hot Jupiter atmosphere. “We know there is silica from Webb’s MIRI data alone, but we needed the visible and near-infrared observations from Hubble for context, to figure out how large the crystals are.”

Unlike mineral particles found in clouds on Earth, the quartz crystals detected in the clouds of WASP-17 b are not swept up from a rocky surface. Instead, they originate in the atmosphere itself. “WASP-17 b is extremely hot – around 2,700 degrees Fahrenheit (1,500 degrees Celsius) – and the pressure where the quartz crystals form high in the atmosphere is only about one-thousandth of what we experience on Earth’s surface,” explained Grant. “In these conditions, solid crystals can form directly from gas, without going through a liquid phase first.”

Understanding what the clouds are made of is crucial for understanding the planet as a whole. Hot Jupiters like WASP-17 b are made primarily of hydrogen and helium, with small amounts of other gases like water vapor (H2O) and carbon dioxide (CO2). “If we only consider the oxygen that is in these gases, and neglect to include all of the oxygen locked up in minerals like quartz (SiO2), we will significantly underestimate the total abundance,” explained Wakeford. “These beautiful silica crystals tell us about the inventory of different materials and how they all come together to shape the environment of this planet.”

Exactly how much quartz there is, and how pervasive the clouds are, is hard to determine. “The clouds are likely present along the day/night transition (the terminator), which is the region that our observations probe,” said Grant. Given that the planet is tidally locked with a very hot day side and cooler night side, it is likely that the clouds circulate around the planet, but vaporize when they reach the hotter day side. “The winds could be moving these tiny glassy particles around at thousands of miles per hour.” WASP-17 b is one of three planets targeted by the JWST Telescope Scientist Team ’s Deep Reconnaissance of Exoplanet Atmospheres using Multi-instrument Spectroscopy (DREAMS) investigations, which are designed to gather a comprehensive set of observations of one representative from each key class of exoplanets: a hot Jupiter, a warm Neptune, and a temperate rocky planet. The MIRI observations of hot Jupiter WASP-17 b were made as part of GTO program 1353.

The James Webb Space Telescope is the world’s premier space science observatory. Webb is solving mysteries in our solar system, looking beyond to distant worlds around other stars, and probing the mysterious structures and origins of our universe and our place in it. Webb is an international program led by NASA with its partners, ESA (European Space Agency) and the Canadian Space Agency.




About This Release

Credits:

Media Contact:

Margaret W. Carruthers
Space Telescope Science Institute, Baltimore, Maryland

Christine Pulliam

Space Telescope Science Institute, Baltimore, Maryland

Science:

David Grant (University of Bristol), Hannah R. Wakeford (University of Bristol), Nikole Lewis (Cornell University)

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Wednesday, October 18, 2023

Rubin Observatory Will Help Unravel Mysteries of Dark Matter and Dark Energy

PR Image noirlab2327a
The effects of weak gravitational lensing on galaxy shapes

PR Image noirlab2327b
The effects of the Universe’s large-scale structure on the light from distant galaxies

PR Image noirlab2327c
Rubin Observatory at Twilight



Videos

The effects of weak gravitational lensing by the Universe's large-scale structure on the observed shapes and positions of galaxies
The effects of weak gravitational lensing by the Universe's large-scale structure on the observed shapes and positions of galaxies



Vera C. Rubin Observatory’s unprecedented deep and wide survey will create most precise map of Universe ever

Rubin Observatory’s Legacy Survey of Space and Time will help scientists map the large-scale structure of the Universe with finer precision than ever before. With Rubin’s wide field of view and high resolution, the subtle distortions of galaxy shapes caused by dark matter will be detectable, allowing scientists to map dark matter and explore its cosmic tug of war with dark energy.

Everything we know — galaxies, stars, planets, our families, friends, and even pets — makes up just 5% of the Universe. The remaining 95% is made up of mysterious components that scientists call dark energy (68%) and dark matter (27%). What are they, and how do they influence the structure and evolution of the Universe? Researchers like Andrés Alejandro Plazas Malagón, Rubin Operations Scientist at SLAC National Laboratory and Community Scientist and Calibration Scientist at Rubin Observatory, hope to tackle these questions with the upcoming Legacy Survey of Space and Time (LSST), conducted with Rubin Observatory in Chile. With its immense sky coverage and ability to detect faint objects, Rubin’s LSST will provide scientists with the enormous dataset needed to unravel these and other mysteries of the Universe.

In the 1970s American astronomer Vera C. Rubin provided the most convincing evidence at that time for the existence of an unseen ‘dark’ matter in the Universe. Dark matter is called dark because that’s pretty much all we know about it, other than its gravitational influence on stars and gas in galaxies: it’s a substance in the Universe that has mass but doesn’t give off or reflect light. This invisible material makes up about 80% of all matter, and its properties affect how the Universe evolves — how galaxies form and grow as well as how they clump together to form long filaments that make up the structure scientists call the cosmic web.

But shaping the large-scale structure of the Universe is a game of cosmic tug-of-war between dark matter and an elusive force known as dark energy. “You can think of dark matter as trying to build the cosmic structures, while dark energy is actually trying to dilute them and push them apart,” says Plazas Malagón. Most scientists think that dark energy drives the accelerating expansion of the Universe, and that its behavior is described by a quantity known as the cosmological constant. This explanation is commonly agreed on because it aligns with the evidence we’ve collected so far. But, while the cosmological constant is currently a fundamental piece of the equations that describe the Universe, researchers are still trying to pin down its exact value — and whether it’s the explanation for dark energy at all.

Calculating the cosmological constant, and thus placing firm constraints on the equations describing the Universe, is an effort at the forefront of cosmology. And Rubin will enable the most precise measurements of it yet by opening new possibilities for using a subtle effect called weak gravitational lensing to explore the complex interplay between dark matter and dark energy.

Cosmologists use weak lensing to infer the ‘clumpiness’ of matter by observing how its gravity bends light. But unlike strong gravitational lensing, which often produces giant, beautiful arcs around clusters of galaxies, weak lensing produces effects that are less dramatic: tiny distortions of the light from distant galaxies. While weak lensing can occur at the outskirts of a strong lensing system, it also exists everywhere across the Universe as light from background galaxies makes its way through the filaments of galaxies connecting galaxy clusters and superclusters known as the cosmic web. “If strong lensing is like looking through the bottom of a wine glass, weak lensing is like looking through a large, very subtly warped window,” says Theo Schutt, a PhD candidate at Stanford University who collaborates with Plazas Malagón.

These weak distortions of distant galaxies are too slight to be measured by observing just a single galaxy — even with data from thousands of galaxies, scientists can’t tell whether individual galaxies’ observed shapes are their true shapes or whether they’ve been distorted by weak lensing. To really understand the big picture, they need a big dataset to calculate the collective distortion across the entire observable sky. Rubin Observatory, with its ability to observe huge patches of the sky while also being able to see very faint and distant galaxies, will be the first observatory in history to provide data on not just millions, but billions of galaxies and their shapes.

Rubin Observatory will be a leading resource for cutting-edge astronomy and astrophysics when it comes online in 2025. Using an 8.4-meter telescope equipped with the largest digital camera in the world, it will scan the entire southern hemisphere sky every few nights for ten years, providing the most comprehensive view of the Universe we’ve ever seen. Rubin Observatory is jointly funded by the National Science Foundation (NSF) and the US Department of Energy (DOE). Rubin is a Program of NSF’s NOIRLab, which, along with SLAC National Accelerator Laboratory, will operate Rubin.

Current surveys, such as the Dark Energy Survey, the Hyper Suprime Cam survey, and the Kilo-Degree Survey, are already untangling some of the mysteries of dark matter and dark energy. But there is a trade-off, explains Plazas Malagón, between a wide survey and a deep survey, limited by factors such as camera size and resolving power. The LSST Camera at Rubin Observatory has the unmatched wide-field view and high resolution that give astronomers and astrophysicists the best of both worlds. In fact, Rubin Observatory was designed from the start to help scientists map dark matter in the Universe using gravitational lensing of billions of distant galaxies.

“With Rubin, we’re going to have everything,” said Plazas Malagón. “We’re going to measure the properties of vastly more galaxies than what we have now, which is going to give us the statistical power to use weak lensing to both map the distribution of dark matter and study how dark energy evolves with time.”

It’s also possible that Rubin will produce new evidence to support alternative explanations for the phenomena we observe in our Universe beyond the most common theories of dark matter and dark energy.

“Dark energy is a concept that fits with the accepted theory of gravity within Einstein’s general theory of relativity,” said Plazas Malagón, “but Rubin and the LSST will also allow us to explore alternatives to that, which is incredibly exciting as well.”




More information

Rubin Observatory is a joint initiative of the National Science Foundation (NSF) and the Department of Energy (DOE). Its primary mission is to carry out the Legacy Survey of Space and Time, providing an unprecedented data set for scientific research supported by both agencies. Rubin is operated jointly by NSF’s NOIRLab and SLAC National Accelerator Laboratory (SLAC). NOIRLab is managed for NSF by the Association of Universities for Research in Astronomy (AURA) and SLAC is operated for DOE by Stanford University. Additional contributions from a number of international organizations and teams are acknowledged.

The National Science Foundation (NSF) is an independent federal agency created by Congress in 1950 to promote the progress of science. NSF supports basic research and people to create knowledge that transforms the future.

SLAC is operated by Stanford University for the US Department of Energy’s Office of Science. The Office of Science is the single largest supporter of basic research in the physical sciences in the United States and is working to address some of the most pressing challenges of our time.


NSF’s NOIRLab (National Optical-Infrared Astronomy Research Laboratory), the US center for ground-based optical-infrared astronomy, operates the international Gemini Observatory (a facility of NSF, NRC–Canada, ANID–Chile, MCTIC–Brazil, MINCyT–Argentina, and KASI–Republic of Korea), Kitt Peak National Observatory (KPNO), Cerro Tololo Inter-American Observatory (CTIO), the Community Science and Data Center (CSDC), and Vera C. Rubin Observatory (in cooperation with DOE’s SLAC National Accelerator Laboratory). It is managed by the Association of Universities for Research in Astronomy (AURA) under a cooperative agreement with NSF and is headquartered in Tucson, Arizona. The astronomical community is honored to have the opportunity to conduct astronomical research on Iolkam Du’ag (Kitt Peak) in Arizona, on Maunakea in Hawai‘i, and on Cerro Tololo and Cerro Pachón in Chile. We recognize and acknowledge the very significant cultural role and reverence that these sites have to the Tohono O’odham Nation, to the Native Hawaiian community, and to the local communities in Chile, respectively.




Links



Contacts

Andrés Alejandro Plazas Malagón
Rubin Operations Scientist, SLAC National Accelerator Laboratory
Email:
plazas@slac.stanford.edu

Kristen Metzger
Communications Manager for Education and Public Outreach, Rubin Observatory
Email:
kristen.metzger@noirlab.edu

Bob Blum
Director for Operations, Vera C. Rubin Observatory, NSF’s NOIRLab
Tel: +1 520-318-8233
Email:
bob.blum@noirlab.edu

Željko Ivezić
Director of Rubin Construction
Tel: +1-206-403-6132
Email:
ivezic@uw.edu

Josie Fenske
Communications NSF’s NOIRLab
Email:
fenske.josie@noirlab.edu

Manuel Gnida
Media Relations Manager, SLAC National Accelerator Laboratory
Tel: +1 650-926-2632 (office)
Cell: +1 415-308-7832 (cell)
Email:
mgnida@slac.stanford.edu



Tuesday, October 17, 2023

"A New Lens" into the Universe's Most Energetic Particles


Figure 1: An example of a cosmic-ray extensive air shower captured by HSC on the Subaru Telescope. The highlighted tracks, which are mostly aligned in similar directions, show the shower particles induced from a high-energy cosmic ray. A high resolution image is
here (2.0 MB). Credit: NAOJ/HSC Collaboration

A research team including scientists at the National Astronomical Observatory of Japan (NAOJ) and Osaka Metropolitan University has captured extensive cosmic-ray air showers with unprecedented precision using the ultra-wide-field prime focus camera mounted on the Subaru Telescope. Advancing this new detection method will unlock deeper understanding of the Universe’s most energetic particles.

When a high energy cosmic ray collides with the Earth's atmosphere, it generates an enormous number of particles in what is known as an extensive air shower. In images taken by the Subaru Telescope's prime focus camera, Hyper Suprime-Cam (HSC), there are about 20,000 tracks produced by cosmic rays penetrating the CCDs per single shot (Figures 1 and 2). These tracks of cosmic rays act as noise in astronomical observations and are removed by the usual data processing.


Figure 2: (left) A conceptual diagram of a track left when a cosmic ray passes through a CCD. (right) The camera section of HSC is lined with 116 large CCDs, each measuring 6 cm by 3 cm. (Credit: NAOJ/ HSC Project)

A research team including Dr. Satoshi Kawanomoto, Dr. Michitaro Koike, and Dr. Satoshi Miyazaki of Subaru Telescope, NAOJ; Dr. Toshihiro Fujii and graduate student Fraser Bradfield of Osaka Metropolitan University; Dr. Tomoki Morokuma of Chiba Institute of Technology; and Dr. Hiroshi Komiyama of Hosei University, focuses on that very "noise." By analyzing approximately 17,000 images captured between 2014 and 2020, the team pinpointed 13 images that contain extensive air showers, with a number of particle tracks far exceeding the usual count.

"To date, there had been no systematic analysis of such events published in academic journals. An extensive air shower needs to be observed in high altitudes before it spreads out. Also, the detector should be thick enough to record long tracks. The data was obtained for the first time precisely because HSC, which adopted CCDs with a thick depletion layer, was operated for long-term observations at an altitude of 4,200 meters. This demonstrates the uniqueness of HSC and its survey (HSC-SSP) from an entirely new perspective," explains Dr. Miyazaki, the Director of Subaru Telescope.

Traditional cosmic ray detectors (Note 1) record the total number of particles and the time information of the incoming rays, without distinguishing the types of particles (like electrons, positrons, of muons). On the other hand, the new method using HSC has the potential to determine the nature of individual particles from the shapes of their tracks.

"By integrating our method with conventional approaches, we hope to advance our understanding of extensive air showers," says Dr. Fujii.

The air showers captured with HSC suggest the possibility of signals derived from dark matter, pointing to potential applications in dark matter exploration. Furthermore, detailed analysis of the precisely captured tracks will open the door to new insights to the transition of the Universe into a matter-dominated era (Note 2).

The lead author, Dr. Kawanomoto, says, "In astronomical images, cosmic rays are subjects for correction. However, by analyzing the long-term, consistent observation data from HSC-SSP, we were able to demonstrate the potential to extract valuable information in scientific areas not intended for the original purpose. I believe this not only provides insights into the observation methods for high-energy particles but also emphasizes the importance of data archives with guaranteed uniform quality."

These results were published in Scientific Reports on October 12, 2023 as Kawanomoto, et al. "Observing Cosmic-Ray Extensive Air Showers with a Silicon Imaging Detector."

This work was supported by JSPS KAKENHI Grant Numbers 20H00181, 20H05856, 22K21349, and JP20H05852. This work was supported by JST, the establishment of university fellowships towards the creation of science technology innovation, Grant Number JPMJFS2138.

Notes

(Note 1) Traditional cosmic ray detectors include scintillators, which detect faint fluorescent light emitted when cosmic rays pass through materials like plastic, and water Cherenkov detectors that detect Cherenkov radiation from charged particles in water.

(Note 2) At the beginning of the Universe, it is believed that matter and antimatter existed in equal amounts. However, in the current Universe, antimatter has vanished, and matter dominates. This state is referred to as a "matter-dominated era." The reason why antimatter disappeared is not clear, and it is believed that unknown physical laws may be involved..

Relevant Links

Osaka Metropolitan University October 12, 2023 Press Release



Monday, October 16, 2023

Protostars feed from beyond their envelopes


The B5 complex (red and green; radio images taken with the VLA and GBT) seen within its neighborhood, embedded in dust (blue) as seen with ESA’s Herschel Space Observatory, in infrared light. Credit: B. Saxton (NRAO/AUI/NSF); ESA



This diagram shows the gas flow in the Barnard 5 region at the different scales investigated in this work. At the left, fresh gas moves inside the filaments toward condensations (black contours) and the protostar (yellow star) in the direction indicated by the light green arrows. The yellow curve shows the streamer transporting material towards the protostellar disk. The right images zoom into the streamer (yellow), as well as the two outflows (red and blue) and the protostellar disk (brown). The top right schematics shows the front view; the bottom right schematics is rotated by 90° to observe the streamer unobstructed by the outflow cone. © MPE


This plot shows the central velocities for two components, where gas is falling towards the protostar (black star). The two colourbars to the right indicate the velocities of the blueshifted and redshifted clusters, respectively. While a streamline model confirmed that the blueshifted cluster is indeed a streamer transporting gas to the protostar, the classification of the red component as a “streamer" is tentative for now. © MPE




A recent study led by researchers at the Max Planck Institute for Extraterrestrial Physics challenges conventional notions of star formation by revealing the intricate connection between streamers and filaments. Focusing on the star-forming region Barnard 5, the study traces the journey of material from larger scales to protostellar disks, uncovering a remarkable relationship between elongated filaments and gas streamers. In particular, the team discovered a sizeable streamer, which suggests that young stars can receive additional material even after the so-believed main accretion phase.

Traditionally, star formation has been associated with the gradual accumulation of material within natal envelopes, cool and dense regions in the larger molecular cloud. Once the core density reaches a certain limit, it will collapse and form a proto-star. While the protostar continues to accrete material from the newly formed circumstellar disk around it, the classical picture considers this core region as an isolated unit. In recent years, however, there has been an explosion in the discovery of streamers, channels that can surpass the limits of the envelope, with lengths up to 10 000 AU (approximately 0.15 light years). These streamers nourish the disk with fresh gas, but it is still uncertain where they originate. For the first time, researchers at the Max Planck Institute for Extraterrestrial Physics (MPE) have now found clues of a connection between streamers and filaments in star-forming regions, offering a new perspective on the birth of stars.

The team focused on the Barnard 5 region (B5), a dense molecular cloud in the constellation of Perseus. In Barnard 5, two filaments harbour a lonely protostar – but not for long: there are three other condensations that will become a bounded multiple star system in the future. With the combination of three powerful instruments, ALMA in the Chilean desert, NOEMA in the French Alps and the IRAM 30m telescope in Pico Veleta, Spain, the researchers at MPE followed the flow of gas across various scales. “Our aim was to trace the journey of gas from outside of the filament that contains the protostar to the protostellar disks, bridging the gap between different scales of star formation,” says Teresa Valdivia-Mena, PhD student in the Center for Astrochemical Studies at MPE and lead-author of the study.

On larger scales, the researchers found that chemically fresh gas, untainted by the star-formation process, enters the filaments from the bigger Barnard 5 region. The velocity of the gas traced by NOEMA and the 30m IRAM telescope is consistent with infall from outside the two filaments. When the gas reaches the filaments’ spines, it flows in the direction of the three condensations and the protostar. Zooming in with ALMA, the team found a streamer feeding the protostellar disk. What is striking about these observations is that – despite different resolutions – the speed of the chemically fresh gas coming from outside the filaments matches the speed of the streamer. Both the location and the speed along the streamer were reproduced using a theoretical model of free-falling material, and seem to be connected to the flow on larger scales. This means that the chemically unprocessed gas from beyond the filaments can reach the protostar, giving it access to a larger reservoir of material to grow even after the main accretion phase.

“These results are very exciting, because they show that the star-formation process is a multiscale process,” emphasises Jaime Pineda, second author on the Barnard 5 study. “Accretion flows and streamers connect the young stellar objects with the parental cloud. This dynamic process of feeding the young star might even affect the whole disk and planet formation process, although we need future observations to confirm this.” In addition, these observations imply that pristine material from the interstellar cloud can be an important ingredient for the future planetary system. The composition of new-born planets as well as their atmospheres might therefore be influenced by a much larger region than previously assumed.

In essence, this study already paints a vivid picture of the complex dance of gas flows from streamers to filaments and ultimately to protostellar scales. “Our research emphasises how interconnected various scales in the star formation process are, highlighting the profound impact of these flows on the evolution of nascent stars,” concludes Valdivia-Mena.




Contacts:

Maria Teresa Valdivia Mena
phd student
tel: +49 89 30000-3546
tel: +49 89 30000-3950

mvaldivi@mpe.mpg.de

Jaime Pineda Fornerod
scientist
tel: +49 89 30000-3610
tel: +49 173 3517084
tel: +49 89 30000-3950

jpineda@mpe.mpg.de

Hannelore Hämmerle
press officer
tel> +49 89 30000-3980
tel: +49 89 30000-3569

hanneh@mpe.mpg.de

Original publication

M. T. Valdivia-Mena, J. E. Pineda, D. M. Segura-Cox, P. Caselli, A. Schmiedeke, S. Choudhury, S. S. R. Offner, R. Neri, A. Goodman, G. A. Fuller
Flow of gas detected from beyond the filaments to protostellar scales in Barnard 5
A&A, 677, A92 (2023


Source


Sunday, October 15, 2023

Looking for a Dragonfly in the Sky

Composite radio and X-ray image of the Dragonfly pulsar wind nebula.
Adapted from
Jin et al. 2023

Title: Hard X-ray Observation and Multiwavelength Study of the PeVatron Candidate Pulsar Wind Nebula “Dragonfly”
Authors: Jooyun Woo et al.
First Author’s Institution: Columbia Astrophysics Laboratory
Status: Published in ApJ

Figure 1: A multi-wavelength view of the Crab Nebula that shows the X-rays from the pulsar wind nebula (pinkish-white region at the center)
Credit:
NASA, ESA, NRAO/AUI/NSF and G. Dubner (University of Buenos Aires)


Pulsar Wind Nebulae: Little Space Animals

Pulsar wind nebulae are cosmic particle accelerators found all over the Milky Way (and in other galaxies too!). They’re made by the winds of pulsars — rapidly rotating and highly magnetized neutron stars, which are remnants of massive stars — pushing out winds of particles into the environments around them. The most famous example of a pulsar wind nebula is the Crab Nebula, which can be seen in Figure 1 as the small, pinkish-white, tornado-esque structure located in the larger multicolored supernova remnant left over from the original star’s explosion around a thousand years ago.

The Crab Nebula isn’t the only pulsar wind nebula with a fun nickname; in fact, most of these nebulae and their associated supernova remnants are named after animals that they (very) vaguely resemble. There’s the Mouse, the Goose, and the Kookaburra, just to name a few — and of course, the topic of today’s article, the Dragonfly (see Figure 2). Besides slightly resembling animals, pulsar wind nebulae are also thought to produce the highest-energy particles we detect on Earth. A new catalog of the highest-energy gamma-rays ever seen (see this bite) either links or tentatively associates many of these energetic systems with pulsars or pulsar wind nebulae.


Figure 2: Radio (colour) and X-ray (contours) image of the Dragonfly pulsar wind nebula. Doesn’t it sort of look like a dragonfly? Credit:
Jin et al. 2023

Looking for the Dragonfly with All Sorts of Different (Wavelength) Eyes!

The authors of today’s article investigate the Dragonfly with multiple different telescopes that detect light across the electromagnetic spectrum to get a full picture of what’s going on with the particles accelerated in and around the nebula. The authors model the multi-wavelength emission to try to figure out if the Dragonfly is capable of accelerating particles (electrons, protons, and other things) up to petaelectronvolt (PeV; that’s a quadrillion electronvolts!) energies that then interact to make gamma rays, which would classify it as a PeVatron (a name that aptly describes any astronomical source that can accelerate particles up to PeV energies). We detect the highest-energy charged cosmic rays up to PeV energies, but we haven’t seen too many sources that emit gamma rays at these energies due to instrumental limitations and other things like photon absorption. Since cosmic rays (usually protons) get deviated in their travels to Earth by the swirling magnetic fields of the Milky Way, we need to search for neutral particles of similar energies, like photons (i.e., gamma rays) to find PeVatrons, since they trace a straight line back from the particle to its source.

Using model fitting, the authors can create and evolve a pulsar and pulsar wind nebula to match the observed data, which gives them information like the nebular age, the expected shape of the nebula’s emission, and whether or not it can be a PeVatron, among many other interesting clues that help narrow down what’s going on with the particles and material in this system.

In particular, one interesting thing the authors notice is that the shape of the Dragonfly is long and asymmetric in soft X-ray wavelengths (and potentially in other wavelengths, but it’s hard to say due to much coarser angular resolution; see Figure 3b). Usually we’d expect to see a more spherical shape, so the explanation for this could be that the pulsar that’s powering the nebula is zooming through space at an unusually high speed or, more likely, that the nebula lives within a supernova remnant that hasn’t been seen yet. The interaction of particles from the pulsar wind nebula with the supernova remnant can cause some funky shapes to appear in the surrounding material. The authors suggest that looking at the Dragonfly with a long exposure in radio wavelengths might be able to pick up signs of a supernova remnant that are overwhelmed in other wavelengths by the bright pulsar wind nebula to confirm this scenario.

By looking at the full multi-wavelength picture (see Figure 3), the authors note that the size of the pulsar wind nebula decreases with increasing energy in X-ray wavelengths (this isn’t apparent in Figure 3d, because the instrument isn’t able to resolve small structure and blurs everything out to look bigger than it is), meaning that the the nebula becomes a less efficient particle accelerator as we move to higher energies. By modelling this behaviour, the authors find a maximum particle energy of 1.4 PeV, meaning that the Dragonfly really can be a PeVatron.


Figure 3: The observed shape of the Dragonfly in a) radio, b) soft X-ray, c) hard X-ray, and d) very-high-energy gamma rays with X-ray contours in blue. The star or X in each figure marks the pulsar location. Adapted from Woo et al. 2023

Maybe a PeVatron? We’ll Have to Wait and See!

There’s still more work to do to figure out if we can actually see gamma rays at energies beyond a PeV from the Dragonfly and to figure out how particles are being transported around the nebula to get the weird asymmetric shape that today’s authors observed. More observations using existing radio, X-ray, and other instruments as well as future ultra-high-energy gamma-ray telescopes (like SWGO and CTAO-South) can help answer these questions and help us get an even more full picture of the Dragonfly.

Original astrobite edited by Lucie Rowland




About the author, Samantha Wong:

I’m a graduate student at McGill University, where I study high energy astrophysics. This includes studying all sorts of extreme environments in the universe like active galactic nuclei, pulsars, and supernova remnants with the VERITAS gamma-ray telescope.



Editor’s Note: Astrobites is a graduate-student-run organization that digests astrophysical literature for undergraduate students. As part of the partnership between the AAS and astrobites, we occasionally repost astrobites content here at AAS Nova. We hope you enjoy this post from astrobites; the original can be viewed at astrobites.org.


Saturday, October 14, 2023

A Joint Team of Astronomers and Citizen Astronomers Addresses Mysteries of Galaxies!


Figure 1: GALAXY CRUISE, the first Japanese citizen science project for astronomy, set sail in November 2019. It aims to address why galaxies exhibit the various colors and shapes that we see today. The first season of GALAXY CRUISE ran until April 2022. The first scientific paper based on the galaxy morphology catalog containing over 2 million classifications was published. The catalog was also made public. Credit: NAOJ


GALAXY CRUISE, a citizen science project led by the National Astronomical Observatory of Japan (NAOJ), has been sailing the cosmic ocean with citizen astronomers to uncover the secrets of galaxies since 2019. Using the deep, high-quality images from the Subaru Telescope combined with high-accuracy classifications of galaxies provided by the citizen astronomers, professional researchers unambiguously confirmed that galaxies become more 'active' when they collide and merge with other galaxies. This result is reported in the first scientific paper from GALAXY CRUISE. The citizen astronomers' classifications are made available to the public so that astronomers from all over the world can use them to make new discoveries.

The Universe is filled with a wide variety of galaxies; some galaxies are red elliptical galaxies, while others are blue spiral galaxies. There are also galaxies without well-defined shapes. This diversity is thought to arise from collisions and mergers between galaxies over cosmic timescales. However, the exact roles of collisions and mergers have remained poorly understood because interacting galaxies are rare objects and are thus difficult to find. To overcome this difficulty, GALAXY CRUISE called for help from citizen astronomers to identify interacting galaxies from the deep images taken with Hyper Suprime-Cam (HSC) installed on the Subaru Telescope.

Citizen astronomers are by no means professional astronomers, but can they classify galaxies? Yes, they can! Professional astronomers show them how. Citizen astronomers are asked to go through a training course to understand the fundamentals of galaxy morphology. Once they pass the course, they get a boarding pass for GALAXY CRUISE. Many citizen astronomers got onboard and were captivated by the diversity of galaxies in the Universe. About 10,000 citizen astronomers explored the Universe and made more than 2 million classifications in the first 2.5 years of GALAXY CRUISE. Such a large number of classifications would not have been possible by professional astronomers alone.

Dr. Masayuki Tanaka, the 'Captain' of GALAXY CRUISE, carefully analyzed the citizen scientists' classifications and found that the citizen astronomers classified galaxies very well. Figure 2  illustrates the accuracy. The quality of the HSC images is essential for the high classification accuracy; there are many galaxies that were classified as elliptical galaxies in previous studies, but they turn out to exhibit clear spiral arms in the deeper HSC images. "The classification accuracy of GALAXY CRUISE surpasses previous studies," says Tanaka.


Figure 2: Spiral galaxies identified by the citizen astronomers. They all show beautiful spiral arms. A high resolution image is
here (1.8 MB). Credit: NAOJ

The same applies to interacting galaxies, which are the focus of GALAXY CRUISE. When galaxies collide and merge, they often show distorted shapes with characteristic features around them such as tidal tails. These features are often diffuse and faint and can easily be missed. However, thanks to the high sensitivity and high angular resolution of the HSC images, GALAXY CRUISE successfully captured these faint features. The citizen astronomers discovered that many of the 'normal' (i.e., non-interacting) galaxies reported in the previous studies actually exhibit signs of interaction. In addition, citizen astronomers identified galaxies that are currently undergoing violent mergers. Figure 3 showcases these violent mergers. They all show significantly distorted shapes with very complex structures. Such violent mergers are extremely rare and a statistical sample of such galaxies illustrates the power of visual classifications by a large number of citizen astronomers.


Figure 3: Violent mergers. The galaxies are significantly distorted by the strong tidal field, demonstrating how violent mergers can be. A high resolution image is
here (1.6 MB). Credit: NAOJ

The sample of interacting galaxies revealed that these galaxies show an enhanced level of star formation activity (Note 1) compared to normal galaxies. Furthermore, super massive black holes are also found to be more active (Note 2). Interestingly, this activity is most significantly enhanced in violent mergers like those shown in Figure 3. It is likely that the final coalescence of a merger event is the moment when the internal activity of galaxies is most strongly enhanced. These interesting results were published in a scientific paper. This is the first paper from GALAXY CRUISE and is a milestone not just for astronomers but also the participating citizen astronomers.

"There have been a lot of efforts trying to understand the star formation and black hole activities of merging galaxies," says Tanaka. "However, researchers have often reached contradicting results. This is likely due to the difficulties in identifying merging galaxies, differences in the definition of mergers, differences in the way the galaxies are analyzed, etc. GALAXY CRUISE's approach to the problem is the classic visual classification. It is a time consuming but powerful method to identify mergers. Combined with the high-quality HSC images, we could construct a better sample of mergers than before and it led us to confirm unambiguously that mergers enhance the internal activities of galaxies. This is an extremely exciting result and it would not have been possible without the participation of so many citizen astronomers."

GALAXY CRUISE's classification catalog has been released to the public together with the publication of the paper. The high-quality classifications will be further exploited by professional astronomers from all over the world. The catalog will hopefully lead them to new discoveries.

"People may think that scientific work is only for professional researchers. That is not necessarily the case. Public citizens can certainly contribute as GALAXY CRUISE demonstrated. GALAXY CRUISE is still on its continuing voyage. Why not join us? I am looking forward to welcoming you on board and solving the mysteries of galaxies together," Captain Tanaka concludes.

This work has been published online in Publications of the Astronomical Society of Japan (PASJ) on September 26, 2023 as Tanaka et al. "GALAXY CRUISE: Deep Insights into Interacting Galaxies in the Local Universe."

(Note 1) A galaxy contains a massive reservoir of gas. Gas cools and becomes denser with time through gravitational forces. When the gas becomes dense enough to initiate a nuclear reaction, a star forms. In other words, a galaxy is a production factory for stars. The galaxy's activity to form new stars is referred to as star formation activity.

(Note 2) A massive galaxy likely hosts a super massive black hole at its center. A black hole has strong gravity and pulls matter from its surroundings. As matter falls onto a black hole, the matter forms a disk, which is bright and is observed as an activity of the black hole. Higher black hole activity means more material is flowing onto the black hole.




Relevant Links



About the Subaru Telescope

The Subaru Telescope is a large optical-infrared telescope operated by the National Astronomical Observatory of Japan, National Institutes of Natural Sciences with the support of the MEXT Project to Promote Large Scientific Frontiers. We are honored and grateful for the opportunity of observing the Universe from Maunakea, which has cultural, historical, and natural significance in Hawai`i.



Friday, October 13, 2023

LINER on collision course


Two galaxies are prominent among many much smaller background galaxies in the darkness of space. The larger galaxy is an elliptical galaxy, radiating light in a perfectly even sphere from a bright centre. The smaller galaxy is a barred spiral, with arms that are wispy like fog connected to a bar crossing the galaxy’s shining core. The shape of the arms makes the smaller galaxy notably squarish. Credit: ESA/Hubble & NASA, M. West

This Picture of the Week prominently features two galaxies: NGC 3558 in the lower left, and LEDA 83465 in the upper right. Both galaxies lie roughly 450 million light years from Earth. The two galaxies are separated from one another by a distance of roughly 150 000 light years, which might sound vast, until we consider that our nearest galactic neighbour — the Andromeda galaxy — is a whopping 2.5 million light years distant from the Milky Way galaxy. In galactic terms, the two galaxies pictured here are practically on top of one another.

This is because they belong to a crowded and chaotic galaxy cluster known as Abell 1185, which is packed with galaxies that are interacting with one another via gravity. These galactic interactions have sometimes led to dramatic results, such as galaxies being torn apart completely. This fate has not befallen NGC 3558, which currently retains its integrity as both an elliptical galaxy and a low-ionisation nuclear emission-line region, or LINER. In fact, it probably attained its present form by devouring smaller galaxies in the cluster — galaxies much like LEDA 83465.

LINERs are a particular type of galactic nucleus or core, and are distinguished by the chemical fingerprints written into the light that they emit. As their name suggests, LINERs emit light which suggests that many of the atoms and molecules within these galactic cores have either been weakly ionised or not ionised at all. Ionisation is the process by which atoms or molecules lose or gain electrons. In galaxies, it is driven by a variety of processes — from shockwaves travelling through galaxies, to radiation from massive stars or from hot gas in accretion discs. In the case of LINERs, this means that many of the atoms and molecules within the galaxies have lost either a single electron, or have retained all their electrons. The mechanism that drives this weak ionisation in LINERs such as NGC 3558 is still debated amongst astronomers.



Thursday, October 12, 2023

NASA’s Webb Captures an Ethereal View of NGC 346

NGC 346 (MIRI Image)
Credits: Image: NASA, ESA, CSA, STScI, Nolan Habel (NASA-JPL)
Image Processing: Patrick Kavanagh (Maynooth University)




One of the greatest strengths of NASA’s James Webb Space Telescope is its ability to give astronomers detailed views of areas where new stars are being born. The latest example, showcased here in a new image from Webb’s Mid-Infrared Instrument (MIRI), is NGC 346 – the brightest and largest star-forming region in the Small Magellanic Cloud.

The Small Magellanic Cloud (SMC) is a satellite galaxy of the Milky Way, visible to the unaided eye in the southern constellation Tucana. This small companion galaxy is more primeval than the Milky Way in that it possesses fewer heavy elements, which are forged in stars through nuclear fusion and supernova explosions, compared to our own galaxy.

Since cosmic dust is formed from heavy elements like silicon and oxygen, scientists expected the SMC to lack significant amounts of dust. However the new MIRI image, as well as a previous image of NGC 346 from Webb’s Near-Infrared Camera released in January, show ample dust within this region.

In this representative-color image, blue tendrils trace emission from material that includes dusty silicates and sooty chemical molecules known as polycyclic aromatic hydrocarbons, or PAHs. More diffuse red emission shines from warm dust heated by the brightest and most massive stars in the heart of the region. An arc at the center left may be a reflection of light from the star near the arc’s center. (Similar, fainter arcs appear associated with stars at lower left and upper right.) Lastly, bright patches and filaments mark areas with abundant numbers of protostars. The research team looked for the reddest stars, and found 1,001 pinpoint sources of light, most of them young stars still embedded in their dusty cocoons.

By combining Webb data in both the near-infrared and mid-infrared, astronomers are able to take a fuller census of the stars and protostars within this dynamic region. The results have implications for our understanding of galaxies that existed billions of years ago, during an era in the universe known as “cosmic noon,” when star formation was at its peak and heavy element concentrations were lower, as seen in the SMC.

The James Webb Space Telescope is the world's premier space science observatory. Webb is solving mysteries in our solar system, looking beyond to distant worlds around other stars, and probing the mysterious structures and origins of our universe and our place in it. Webb is an international program led by NASA with its partners, ESA (European Space Agency) and the Canadian Space Agency.




About This Release

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Christine Pulliam
Space Telescope Science Institute, Baltimore, Maryland

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Contact Us: Direct inquiries to the News Team.

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Wednesday, October 11, 2023

Dawn of Planet Formation Unveiled by ALMA Observations


High-resolution ALMA imagery of the protoplanetary disk surrounding DG Taurus at a 1.3 mm wavelength. The smooth appearance, absent of ring-like structures, indicates a phase shortly preceding planet formation. Credit: ALMA (ESO/NAOJ/NRAO), S. Ohashi, et al.



The top panel displays the radio wave strength maps of the DG Tau disk across three wavelengths: 0.87 mm, 1.3 mm, and 3.1 mm. Accompanying these are the polarization strength maps for 0.87 mm and 3.1 mm wavelengths, showcasing the radio waves scattered by the dust. The bottom panel presents the optimal simulation, aligning with the observed results. This multifaceted view offers a deeper understanding of the processes taking place in the disk. Credit: ALMA (ESO/NAOJ/NRAO), S. Ohashi, et al.




An international research team has harnessed the power of the Atacama Large Millimeter/submillimeter Array (ALMA) to illuminate the beginnings of planet formation. Led by Project Assistant Professor Satoshi Ohashi from the National Astronomical Observatory of Japan (NAOJ), the team focused their study on a protostar named DG Taurus (DG Tau), which displayed a smooth and unblemished protoplanetary disk, revealing the conditions just before planets begin to form.

Scientists believe that planets emerge from the interstellar dust and gas in a protostar's surrounding disk. However, the onset of this transformative process has remained enigmatic. While many disks observed with ALMA display ring-like structures—hinting at planet presence—finding a pristine disk without such signatures has been elusive.

The team's observations of DG Tau, a relatively young protostar, have offered a breakthrough. Using ALMA, they discerned a uniformly smooth disk devoid of the characteristic ring patterns often found in older protostars. This observation underscores the belief that DG Tau might be on the brink of planet formation. Deciphering the origins of Earth-like planets is pivotal for understanding the beginnings of life.

Extending their research, the team observed the disk across different wavelengths, obtaining insights into dust size and distribution. The findings intriguingly suggest the disk's outer regions as the potential starting point for planet formation, challenging previously held beliefs that the inner disk was the primary inception point. Notably, the midplane of the disk exhibited a high dust-to-gas ratio, hinting at the disk's readiness for planet formation soon.

"ALMA has so far succeeded in capturing a wide variety of disk structures and has revealed the existence of planets. On the other hand, to answer the question, 'How does planet formation begin?', it is important to observe a smooth disk with no signature of planet formation. We believe that this study is very important because it reveals the initial conditions for planet formation," commented Professor Satoshi Ohashi on its significance.




Additional Information

This research was published in The Astrophysical Journal on August 28, 2023, as "Dust Enrichment and Grain Growth in a Smooth Disk around the DG Tau Protostar Revealed by ALMA Triple Bands Frequency Observations" (DOI: 10.3847/1538-4357/ace9b9).

This project is also supported by Grants-in-Aid from the Japan Society for the Promotion of Science (KAKENHI: Nos. JP18H05441, JP19K23469, JP20K04017, JP20K14533, JP20H00182, JP22H01275, JP23H01227), the RIKEN pioneering project of Evolution of Matter in the Universe, the DFG-Grant "INSIDE: The INner regions of protoplanetary disks: SImulations anD obsErvations" (project No. 465962023), the EC H2020 research and innovation program for the project "Astro-Chemical Origins" (ACO, No. 811312) and the PRIN-MUR 2020 MUR BEYOND-2p (Astrochemistry beyond the second-period elements, Prot. 2020AFB3FX).

The National Astronomical Observatory of Japan (NAOJ), an ALMA partner on behalf of East Asia, released the original press release.

The Atacama Large Millimeter/submillimeter Array (ALMA), an international astronomy facility, is a partnership of the European Organisation for Astronomical Research in the Southern Hemisphere (ESO), the U.S. National Science Foundation (NSF) and the National Institutes of Natural Sciences (NINS) of Japan in cooperation with the Republic of Chile. ALMA is funded by ESO on behalf of its Member States, by NSF in cooperation with the National Research Council of Canada (NRC) and the National Science and Technology Council (NSTC) in Taiwan and by NINS in cooperation with the Academia Sinica (AS) in Taiwan and the Korea Astronomy and Space Science Institute (KASI).

ALMA construction and operations are led by ESO on behalf of its Member States; by the National Radio Astronomy Observatory (NRAO), managed by Associated Universities, Inc. (AUI), on behalf of North America; and by the National Astronomical Observatory of Japan (NAOJ) on behalf of East Asia. The Joint ALMA Observatory (JAO) provides the unified leadership and management of the construction, commissioning and operation of ALMA.




Contacts:

Nicolás Lira
Education and Public Outreach Coordinator
ALMA Observatory, Santiago - Chile
Phone: +56 2 2467 6519
Cel:
+56 9 9445 7726
Email: nicolas.lira@alma.cl

Naoko Inoue
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National Astronomical Observatory of Japan (NAOJ)
Email:
naoko.inoue@nao.ac.jp

Jill Malusky
Public Information Officer
NRAO
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+1 304-456-2236
Email: jmalusky@nrao.edu
Bárbara Ferreira
ESO Public Information Officer
Garching bei München, Germany
Phone: +49 89 3200 6670
Email:
pio@eso.org


Tuesday, October 10, 2023

Growth of "baby galaxies" witnessed with James Webb Space Telescope


The merging galaxy was taken by JWST. Einstein's gravitational lensing effect produces the two images A and B of the same system. This phenomenon is caused by the bending of light around the mass concentration of the galaxy cluster MACS 0417 between the observers and the merging galaxy pair. Light from the distant galaxy pair takes two separate pathways to reach JWST. This results in two images of the merging galaxy system. The purple hue of the light coming from the merging galaxies is due to the hydrogen gas within them that's made to glow by the large numbers of hot young stars forming within the young galaxies.  Credit: KyotoU/Yoshi Asada Japan -- Scientists have theorized how galaxies evolve, but details in their early phase of formation remained shrouded in celestial clouds of mystery.

An international team, including Kyoto University and Saint Mary's University, has now discovered a baby galaxy made possible through the lens of the James Webb Space Telescope or JWST.

This baby galaxy shows evidence that its intensive growth is resulting from a merging event of two smaller galaxies assembled early in the history of our Universe.

These two smaller galaxies, dubbed as ELG1 and ELG2, can also be seen in the JWST images, helping the team better understand how galaxies form.

"Because of Einstein's gravitational lensing or warping effect applied through the JWST, we can see the galaxy twice, like a desert mirage, because light reaches us from two slightly different directions," says Marcin Sawicki at Saint Mary's University in Nova Scotia.

"From studying the newly born galaxy, we learned that when smaller sub-components, such as the ELG1 and ELG2, collide and merge, galaxies can undergo intense growth spurts of star formation," explains Kyoto U's lead author Yoshi Asada.

The JWST data, obtained by the international team, revealed two images of the merging galaxies, produced by the bending of light around the mass concentration of the galaxy cluster MACS 0417 that lies between the observers and the merging galaxy pair.

Evidence of the formation of hot young stars within the young galaxies is the glow caught in the images caused by the ionized hydrogen gas.

Asada has worked on JWST data with other astronomy scientists in Canada, including Professor Sawicki. Both are members of the Canadian NIRISS Unbiased Cluster Survey, or CANUCS collaboration, which studies the evolution of galaxies.




Publication information

【DOI】

https://doi.org/10.1093/mnrasl/slad054

Yoshihisa Asada, Marcin Sawicki, Guillaume Desprez, Roberto Abraham, Maruša Bradač, Gabriel Brammer, Anishya Harshan, Kartheik Iyer, Nicholas S Martis, Lamiya Mowla, Adam Muzzin, Gaël Noirot, Swara Ravindranath, Ghassan T E Sarrouh, Victoria Strait, Chris J Willott, Johannes Zabl (2023). JWST catches the assembly of a z ∼ 5 ultra-low-mass galaxy. Monthly Notices of the Royal Astronomical Society: Letters, 523(1), L40–L45.




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