Showing posts with label protostar. Show all posts
Showing posts with label protostar. Show all posts

Wednesday, April 22, 2026

NASA’s Hubble Dazzles With Young Stars in Trifid Nebula

NASA celebrates Hubble’s 36th anniversary with a new image of the Trifid Nebula, a star-forming region it first captured in 1997. The telescope leveraged almost its full operational lifetime to show us changes in the nebula on human time scales with an improved camera. Credit Image: NASA, ESA, STScI; Image Processing: Joseph DePasquale (STScI)

A pullout shows where the Hubble Space Telescope’s close-up image is located within the wider Trifid Nebula. The image at left was taken by the NSF-DOE Vera C. Rubin Observatory in Chile. The color assignments in the images vary based on the filters in the telescopes’ cameras. Credit Image: Rubin Observatory, NASA, ESA, STScI

This closeup image of the Trifid Nebula (Messier 20 or M20) captured by NASA's Hubble Space Telescope’s Wide Field Camera 3 (WFC3) shows compass arrows, scale bar, and color key for reference. Credit Image: NASA, ESA, STScI; Image Processing: Joseph DePasquale (STScI)

Compare Hubble’s two observations of a portion of the Trifid Nebula, one taken in 2026 with the telescope’s current Wide Field Camera 3 and the other in 1997 with an earlier instrument (the Wide Field and Planetary Camera 2). Credit Video: NASA, ESA, STScI, Leah Hustak (STScI), Christian Nieves (STScI); Image Processing: Joseph DePasquale (STScI), Alyssa Pagan (STScI); Contributor: Subaru Telescope, Robert Gendler; Acknowledgment: Gregory Bacon (STScI), James Muzerolle (STScI), Frank Summers (STScI)

This June 2004 release of Hubble images provided astronomers with detailed views of structures at the heart of the Trifid Nebula.

Tris Hubble image, taken in 1997, revealed a stellar jet protruding from the head of a dense cloud.Credit: NASA and Jeff Hester (Arizona State University



This shimmering region of star-formation, a close-up of the Trifid Nebula about 5,000 light-years from Earth, was captured in intricate detail by NASA’s Hubble Space Telescope. The colors in Hubble’s visible light image, which marks the 36th anniversary of the mission's launch on April 24, are reminiscent of an underwater scene filled with fine-grained sediments fluttering through the ocean’s depths.

Several massive stars, which are outside this field of view, have shaped this region for at least 300,000 years. (See them in a wider view.) Their powerful winds continue to blow an enormous bubble, a small portion of which is shown here, that pushes and compresses the cloud’s gas and dust, triggering new waves of star formation.

This isn’t the first time Hubble has gazed at this scene. The telescope observed the Trifid in 1997 and now, 29 years later, it has leveraged almost its full operational lifetime to show us changes in the nebula on human time scales. Why look at the same location again? In addition to seeing changes over time, Hubble is also equipped with an improved camera with a wider field of view and greater sensitivity that was installed during Servicing Mission 4.

Star formation in ‘Cosmic Sea Lemon’

Hubble’s view of the Trifid Nebula (also known as Messier 20 or M20) focuses on a “head” and undulating “body” of a rusty-colored cloud of gas and dust that resembles a marine sea lemon, or sea slug, that appears as if it is gliding through the cosmos.

The Cosmic Sea Lemon’s left “horn” is part of Herbig-Haro 399, a jet of plasma periodically ejected over centuries by a young protostar embedded in the head of the sea lemon. Changes, as seen in the video below, allow researchers to measure the speeds of the outflows and determine how much energy the protostar is injecting into these regions. These measurements will provide insights into how newly formed stars interact with their surroundings.

To the immediate lower right is evidence of the counter jet: jagged orange and red lines that ”run” down the back of the sea lemon’s neck, where a natural V appears in the brown dust.

The darker, more triangular “horn” on the right of the “head” hosts another young star at its tip. Zoom in to see a faint red dot with a tiny jet. The green arc above it may be evidence that a circumstellar disk is being eroded by the intense ultraviolet light from nearby massive stars. The clearer area around this protostar suggests it may almost be finished forming.

To the immediate left of the Cosmic Sea Lemon is a small, faint pillar that resembles a water bear. Much of this pillar’s gas and dust has been blown away, but the densest material at the top persists.

Streaks and sharp lines offer more clues about other young stars’ activities. Spy an example by looking near the center for a rippling angled line that begins in a bright orange and ends in a blazing red. In the image comparison, it appears to move, which means it may be a jet shot out by another actively forming star buried deeply in dust.

NASA is celebrating the 36th anniversary of the Hubble Space Telescope with a stunning new look at the Trifid Nebula, a star-forming region about 5,000 light-years away. Powerful ultraviolet light from massive stars carved out this glowing bubble, triggering new waves of star birth. Sit back and relax as Hubble Senior Project Scientist, Dr. Jennifer Wiseman takes us on a tour of this beautiful image. Credit: NASA; Lead Producer: Paul Morris. Video YouTube

Prismatic ‘sea’ of color

In Hubble’s visible light observations, the clearest view is toward the top left, where it’s bluer. Strong ultraviolet light from massive stars, not in the field of view, stripped electrons from nearby gas, creating a glow, with winds sculpting a bubble by clearing out surrounding dust.

At the top of the Cosmic Sea Lemon’s head, bright yellow gas streams upward. This is an example of ultraviolet light plowing into the dark brown dust, stripping and dismantling the gas and dust.
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Many ridges and slopes of dark brown material will remain for a few million years, as the stars’ ultraviolet light slowly eats away at the gas. The densest areas are home to protostars, which are obscured in visible light.

The far-right corner is nearly pitch black. This is where the dust is the densest. The stars that appear here may not be part of this star-forming region — they might be closer to us, in the foreground.

Now, scan the scene for bright orange orbs. These stars have fully formed, clearing the space around them. Over millions of years, the nebula’s gas and dust will disappear — only stars will remain.

Unprecedented longevity, nonstop discoveries

Hubble’s varied instruments and the expansive range of light it collects — from ultraviolet through visible to near-infrared — have helped researchers make ground-breaking discoveries for decades and supply new data daily that will inevitably lead to more.

The telescope has taken over 1.7 million observations to date. Almost 29,000 astronomers have published peer-reviewed science papers using Hubble data collected over the telescope’s 36-year lifetime, resulting in more than 23,000 publications, with almost 1,100 in 2025 alone. Hubble’s observational data is publicly available in the Barbara A. Mikulski Archive for Space Telescopes at the Space Telescope Science Institute in Baltimore, while its mission descriptions, history, and gallery of popular images are found on NASA’s Hubble website.

Since 2022, researchers have regularly combined Hubble’s observations with those from NASA's James Webb Space Telescope to push opportunities for discovery further. Very soon, astronomers will begin diving into huge near-infrared datasets from vast surveys from NASA's new Nancy Grace Roman Space Telescope, and will seek to compare them to existing or new Hubble observations to clarify what is at work. For context, Roman’s camera can cover the entire Trifid Nebula, showing the full bubble, with a single pointing — and may turn up interesting objects for follow-up.

Another flagship to look forward to? The mission concept known as the Habitable Worlds Observatory, which would have a significantly larger mirror than Hubble — leading to higher resolution images — and, like Hubble, capture ultraviolet, visible, and infrared light. This next-generation space telescope would advance science across all of astrophysics, and would be the first specifically engineered telescope to identify habitable, Earth-like planets next to relatively bright stars like our Sun and examine them for evidence of life.

The Hubble Space Telescope has been operating for over three decades and continues to make ground-breaking discoveries that shape our fundamental understanding of the universe. Hubble is a project of international cooperation between NASA and ESA (European Space Agency). NASA’s Goddard Space Flight Center in Greenbelt, Maryland, manages the telescope and mission operations. Lockheed Martin Space, based in Denver, also supports mission operations at Goddard. The Space Telescope Science Institute in Baltimore, which is operated by the Association of Universities for Research in Astronomy, conducts Hubble science operations for NASA.




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Last Updated: Apr 20, 2026
Editor: Andrea Gianopoulos
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Friday, January 23, 2026

NASA Webb Finds Young Sun-Like Star Forging, Spewing Common Crystals

NASA’s James Webb Space Telescope’s 2024 NIRCam image shows protostar EC 53 circled. Researchers using new data from Webb’s MIRI proved that crystalline silicates form in the hottest part of the disk of gas and dust surrounding the star — and may be shot to the system’s edges. Credit Image: NASA, ESA, CSA, STScI, Klaus Pontoppidan (NASA-JPL), Joel Green (STScI); Image Processing: Alyssa Pagan (STScI)

This illustration represents half the disk of gas and dust surrounding the protostar EC 53. Stellar outbursts periodically form crystalline silicates, which are launched up and out to the edges of the system, where comets and other icy rocky bodies may eventually form. Credit Illustration: NASA, ESA, CSA, Elizabeth Wheatley (STScI)

This image of protostar EC 53 in the Serpens Nebula, captured by the James Webb Space Telescope’s Near Infrared Camera (NIRCam), shows compass arrows, scale bar, and color key for reference. Credit Image: NASA, ESA, CSA, STScI, Klaus Pontoppidan (NASA-JPL), Joel Green (STScI); Image Processing: Alyssa Pagan (STScI)



Astronomers have long sought evidence to explain why comets at the outskirts of our own solar system contain crystalline silicates, since crystals require intense heat to form and these “dirty snowballs” spend most of their time in the ultracold Kuiper Belt and Oort Cloud. Now, looking outside our solar system, NASA’s James Webb Space Telescope has returned the first conclusive evidence that links how those conditions are possible. The telescope clearly showed for the first time that the hot, inner part of the disk of gas and dust surrounding a very young, actively forming star is where crystalline silicates are forged. Webb also revealed a strong outflow that is capable of carrying the crystals to the outer edges of this disk. Compared to our own fully formed, mostly dust-cleared solar system, the crystals would be forming approximately between the Sun and Earth.

Webb’s sensitive mid-infrared observations of the protostar, cataloged EC 53, also show that the powerful winds from the star’s disk are likely catapulting these crystals into distant locales, like the incredibly cold edge of its protoplanetary disk where comets may eventually form.

“EC 53’s layered outflows may lift up these newly formed crystalline silicates and transfer them outward, like they’re on a cosmic highway,” said Jeong-Eun Lee, the lead author of a new paper in Nature and a professor at Seoul National University in South Korea. “Webb not only showed us exactly which types of silicates are in the dust near the star, but also where they are both before and during a burst.”

The team used Webb’s MIRI (Mid-Infrared Instrument) to collect two sets of highly detailed spectra to identify specific elements and molecules, and determine their structures. Next, they precisely mapped where everything is, both when EC 53 is “quiet” (but still gradually “nibbling” at its disk) and when it’s more active (what’s known as an outburst phase).

This star, which has been studied by this team and others for decades, is highly predictable. (Other young stars have erratic outbursts, or their outbursts last for hundreds of years.) About every 18 months, EC 53 begins a 100-day, bombastic burst phase, kicking up the pace and absolutely devouring nearby gas and dust, while ejecting some of its intake as powerful jets and outflows. These expulsions may fling some of the newly formed crystals into the outskirts of the star’s protoplanetary disk.

“Even as a scientist, it is amazing to me that we can find specific silicates in space, including forsterite and enstatite near EC 53,” said Doug Johnstone, a co-author and a principal research officer at the National Research Council of Canada. “These are common minerals on Earth. The main ingredient of our planet is silicate.” For decades, research has also identified crystalline silicates not only on comets in our solar system, but also in distant protoplanetary disks around other, slightly older stars — but couldn’t pinpoint how they got there. With Webb’s new data, researchers now better understand how these conditions might be possible.

“It’s incredibly impressive that Webb can not only show us so much, but also where everything is,” said Joel Green, a co-author and an instrument scientist at the Space Telescope Science Institute in Baltimore, Maryland. “Our research team mapped how the crystals move throughout the system. We’ve effectively shown how the star creates and distributes these superfine particles, which are each significantly smaller than a grain of sand.”

Webb’s MIRI data also clearly shows the star’s narrow, high-velocity jets of hot gas near its poles, and the slightly cooler and slower outflows that stem from the innermost and hottest area of the disk that feeds the star. The image above, which was taken by another Webb instrument, NIRCam (Near-Infrared Camera), shows one set of winds and scattered light from EC 53’s disk as a white semi-circle angled toward the right. Its winds also flow in the opposite direction, roughly behind the star, but in near-infrared light, this region appears dark. Its jets are too tiny to pick out.

Look ahead

EC 53 is still “wrapped” in dust and may be for another 100,000 years. Over millions of years, while a young star’s disk is heavily populated with teeny grains of dust and pebbles, an untold number of collisions will occur that may slowly build up a range of larger rocks, eventually leading to the formation of terrestrial and gas giant planets. As the disk settles, both the star itself and any rocky planets will finish forming, the dust will largely clear (no longer obscuring the view), and a Sun-like star will remain at the center of a cleared planetary system, with crystalline silicates “littered” throughout.

EC 53 is part of the Serpens Nebula, which lies 1,300 light-years from Earth and is brimming with actively forming stars.

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 CSA (Canadian Space Agency).




Related Links

Read more: Webb’s Star Formation Discoveries

Explore more: Image Tour: Herbig-Haro 46/47

Read more: First-of-Its-Kind Detection Made in Striking New Webb Image

Read more: Infographic: Recipe for planet formation

Explore more: Star formation in the Eagle Nebula

Video: Exploring Star and Planet Formation

More Webb News

More Webb Images

Webb Science Themes

Webb Mission Page



Location: NASA Goddard Space Flight Center

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laura.e.betz@nasa.gov

Claire Blome
Space Telescope Science Institute
Baltimore, Maryland

Christine Pulliam
Space Telescope Science Institute
Baltimore, Maryland



Tuesday, October 08, 2024

Winds of change: James Webb Space Telescope reveals elusive details in young star systems

This artist’s impression of a planet-forming disk surrounding a young star shows a swirling “pancake” of hot gas and dust from which planets form. Using the James Webb Space Telescope, the team obtained detailed images showing the layered, conical structure of disk winds – gas streams blowing out into space. © National Astronomical Observatory of Japan (NAOJ)



Nested morphology of gas streams confirms a mechanism that helps infant stars to grow by ingesting disk material.

Planet-forming disks, maelstroms of gas and dust swirling around young stars, are nurseries that give rise to planetary systems, including our solar system. Astronomers have discovered new details of gas flows that sculpt and shape those disks over time. The observed nested structure of those flows confirms a long-theorized mechanism that allows the star to grow by tapping disk material.

Every second, more than 3,000 stars are born in the visible universe. Many are surrounded by what astronomers call a protoplanetary disk – a swirling “pancake” of hot gas and dust that feeds the central star’s growth and provides the building blocks of new planets. However, the exact processes that give rise to stars and planetary systems are still poorly understood.

JWST takes a detailed look at disk winds

A team of astronomers led by University of Arizona researchers supported by scientists from the Max Planck Institute for Astronomy (MPIA) in Heidelberg, Germany, used the James Webb Space Telescope (JWST) to obtain some of the most detailed insights into the forces that shape protoplanetary disks. The observations offer glimpses into what our solar system may have looked like 4.6 billion years ago.

Specifically, the team was able to trace so-called disk winds in unprecedented detail. These winds are streams of gas blowing from the planet-forming disk out into space. Primarily powered by magnetic fields, these winds can travel dozens of kilometres in just one second. The researchers’ findings, published in Nature Astronomy, help astronomers better understand how young planetary systems form and evolve.

According to the paper’s lead author, Ilaria Pascucci, a professor at the University of Arizona’s Lunar and Planetary Laboratory, one of the most important processes at work in a protoplanetary disk is the star eating matter from its surrounding disk, which astronomers call accretion.

“How a star accretes mass has a big influence on how the surrounding disk evolves over time, including the way planets form later on,” Pascucci said. “The specific ways in which this happens have not been understood, but we think that winds driven by magnetic fields across most of the disk surface could play a very important role.”

Magnetized disk winds help with stellar growth

Young stars grow by pulling in gas from the disk swirling around them, but for that to happen, the gas must first shed some of its inertia. Otherwise, the gas would consistently orbit the star and never fall onto it. Astrophysicists call this process “losing angular momentum,” but how exactly that happens has proved elusive.

To better understand how angular momentum works in a protoplanetary disk, it helps to picture a figure skater on the ice: Tucking her arms alongside her body will make her spin faster while stretching them out will slow down her rotation. Because her mass does not change, the angular momentum remains the same.

For accretion to occur, gas across the disk has to lose angular momentum. Still, astrophysicists have a hard time agreeing on how exactly this happens. In recent years, magnetically driven disk winds have emerged as essential players funnelling away some gas from the disk surface – with it, angular momentum – allowing the leftover gas to move inward and ultimately fall onto the star.

How to distinguish between wind mechanisms

Because other processes at work also shape protoplanetary disks, it is critical to be able to distinguish between the different phenomena, according to the paper’s second author, Tracy Beck at NASA’s Space Telescope Science Institute.

While the star’s magnetic field pushes out material at the inner edge of the disk in what astronomers call an X-wind, the outer parts of the disk are eroded by intense starlight, resulting in so-called thermal winds, which blow at much slower velocities. JWST’s high sensitivity and resolution were ideally suited to distinguish between the magnetic field-driven wind, the thermal wind and the X-wind.

A crucial property distinguishing the magnetically driven from the X-wind is that they are located farther out and extend across broader regions, including the inner, rocky planets of our solar system – roughly between Earth and Mars. These winds also extend farther above the disk than thermal winds, reaching hundreds of times the distance between Earth and the sun.

“We had already found observational indications for such a wind based on interferometric observations at radio wavelengths,” MPIA astronomer Dmitry Semenov points out. He is also a co-author of the underlying study. However, those observations could not probe the entire disk wind morphology, let alone image them in detail. In particular, the nested structure of the various wind components, a hallmark of those disk winds, was beyond the observations’ capabilities. In contrast, the new JWST observations revealed that structure without any doubt. The observed morphology matches the expectations for a magnetically driven disk wind.

“Our observations strongly suggest that we have obtained the first detailed images of the winds that can remove angular momentum and solve the longstanding problem of how stars and planetary systems form,” Pascucci said.

For their study, the researchers selected four protoplanetary disk systems, all appearing edge-on when viewed from Earth. Their orientation allowed the dust and gas in the disk to act as a mask, blocking some of the bright central star’s light, which otherwise would have overwhelmed the winds.

Observed gas jet and wind structure of the HH 30 protostar, with offsets given in astronomical units (au), the mean distance between Sun and Earth. The colours indicate observations of various gas components detected at different wavelengths. The blue, green and grey colours represent detections made with JWST. They indicate ionized iron (blue), molecular hydrogen (green) and carbon monoxide (grey line). In addition, the red colour stems from an observation of the carbon monoxide molecule obtained with the ground-based ALMA radio interferometer. The nested morphology is visible and spans a wide range across the disk plane set to a vertical offset of zero. The pixels indicate the spatial spacing of the NIRSpec Integral Field Unit. © I. Pascucci et al. / MPIA .

JWST’s NIRSpec resolves nested wind morphology

The team could trace various wind layers by tuning JWST’s NIRSpec detector to distinct atoms and molecules in certain states of transition. NIRSpec is JWST’s high-resolution near-infrared spectrograph. The astronomers obtained spatially resolved spectral information across the entire field of view by employing the spectrograph’s Integral Field Unit (IFU), essentially a grid looking at distinct positions in the sky. This way, the scientists synthesized images at various diagnostic wavelengths, each being comparably coarse but still good enough to resolve the morphology.

The observations revealed an intricate, three-dimensional structure of a central jet nested inside a cone-shaped envelope of winds originating at progressively larger disk distances, similar to the layered structure of an onion. According to the researchers, an important new finding was the consistent detection of a pronounced central hole inside the cones, formed by molecular winds in each of the four disks.

Next, Pascucci’s team hopes to expand these observations to more protoplanetary disks to understand better how common the observed disk wind structures are in the universe and how they evolve.

“We believe they could be common, but with four objects, it’s a bit difficult to say,” Pascucci said. “We want to get a larger sample with JWST and then also see if we can detect changes in these winds as stars assemble and planets form.”

Background information

The MPIA scientists involved in this study are Dmitry Semenov and Kamber Schwarz.

Other researchers include Ilaria Pascucci (Lunar and Planetary Laboratory, University of Arizona, Tucson, USA [UofA], study lead), Tracy L. Beck (Space Telescope Science Institute, Baltimore, USA), Sylvie Cabrit (Observatoire de Paris, LERMA, CNRS, Paris, France), and Naman S. Bajaj (UofA).

NIRSpec is part of the European Space Agency’s (ESA) contribution to the Webb mission, built by a consortium of European companies led by Airbus Defence and Space (ADS). NASA’s Goddard Space Flight Centre provided two sub-systems (detectors and micro-shutters). MPIA was responsible for procuring electrical components of the NIRSpec grating wheels.

JWST is the world’s premier space science observatory. It is an international program led by NASA jointly with its partners, ESA (European Space Agency) and CSA (Canadian Space Agency).

Funding for this work was provided by NASA and the European Research Council.

This text is largely based on a press release published by the University of Arizona, written by Daniel Stolte.




Contacts:

Dr. Markus Nielbock
Press and outreach officer

+49 6221 528-134
pr@mpia.de
MPIA press department
Max Planck Institute for Astronomy, Heidelberg, Germany

Dr. Dmitry Semenov
+49 6221 528-354
semenov@mpia.de
Dimitry Semenov / MPIA
Max Planck Institute for Astronomy, Heidelberg, Germany



Original publication

Ilaria Pascucci et al.
The nested morphology of disk winds from young stars revealed by JWST/NIRSpec observations
Nature Astronomy (2024)
DOI: 10.1038/s41550-024-02385-7


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Related article


New observations confirm important step in star formation New observations confirm important step in star formation October 17, 2023

Friday, July 05, 2024

NASA's Webb Captures Celestial Fireworks Around Forming Star

L1527 and Protostar (MIRI Image)
Credits: Image: NASA, ESA, CSA, STScI

L1527 and Protostar (MIRI Compass Image)
Credits: Image: NASA, ESA, CSA, STScI




The cosmos seems to come alive with a crackling explosion of pyrotechnics in this new image from NASA’s James Webb Space Telescope. Taken with Webb’s MIRI (Mid-Infrared Instrument), this fiery hourglass marks the scene of a very young object in the process of becoming a star. A central protostar grows in the neck of the hourglass, accumulating material from a thin protoplanetary disk, seen edge-on as a dark line. )

The protostar, a relatively young object of about 100,000 years, is still surrounded by its parent molecular cloud, or large region of gas and dust. Webb’s previous observation of L1527, with NIRCam (Near-Infrared Camera), allowed us to peer into this region and revealed this molecular cloud and protostar in opaque, vibrant colors.

Both NIRCam and MIRI show the effects of outflows, which are emitted in opposite directions along the protostar’s rotation axis as the object consumes gas and dust from the surrounding cloud. These outflows take the form of bow shocks to the surrounding molecular cloud, which appear as filamentary structures throughout. They are also responsible for carving the bright hourglass structure within the molecular cloud as they energize, or excite, the surrounding matter and cause the regions above and below it to glow. This creates an effect reminiscent of fireworks brightening a cloudy night sky. Unlike NIRCam, however, which mostly shows the light that is reflected off dust, MIRI provides a look into how these outflows affect the region’s thickest dust and gases.

The areas colored here in blue, which encompass most of the hourglass, show mostly carbonaceous molecules known as polycyclic aromatic hydrocarbons. The protostar itself and the dense blanket of dust and a mixture of gases that surround it are represented in red. (The sparkler-like red extensions are an artifact of the telescope’s optics). In between, MIRI reveals a white region directly above and below the protostar, which doesn’t show as strongly in the NIRCam view. This region is a mixture of hydrocarbons, ionized neon, and thick dust, which shows that the protostar propels this matter quite far away from it as it messily consumes material from its disk.

As the protostar continues to age and release energetic jets, it’ll consume, destroy, and push away much of this molecular cloud, and many of the structures we see here will begin to fade. Eventually, once it finishes gathering mass, this impressive display will end, and the star itself will become more apparent, even to our visible-light telescopes.

The combination of analyses from both the near-infrared and mid-infrared views reveal the overall behavior of this system, including how the central protostar is affecting the surrounding region. Other stars in Taurus, the star-forming region where L1527 resides, are forming just like this, which could lead to other molecular clouds being disrupted and either preventing new stars from forming or catalyzing their development.

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 CSA (Canadian Space Agency).




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Matthew Brown
Space Telescope Science Institute, Baltimore, Maryland

Christine Pulliam
Space Telescope Science Institute, Baltimore, Maryland

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Contact Us: Direct inquiries to the News Team.


Tuesday, March 26, 2024

Hubble sees new star proclaiming its presence with cosmic light show




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Pan: FS Tau



Jets emerge from the cocoon of a newly forming star to blast across space, slicing through the gas and dust of a shining nebula, in this new image from the NASA/ESA Hubble Space Telescope.

FS Tau is a multi-star system made up of FS Tau A, the bright star-like object near the middle of the image, and FS Tau B (Haro 6-5B), the bright object to the far right that is partially obscured by a dark, vertical lane of dust. These young objects are surrounded by the softly illuminated gas and dust of this stellar nursery. The system is only about 2.8 million years old, very young for a star system. Our Sun, by contrast, is about 4.6 billion years old.

FS Tau B is a newly forming star, or protostar, and is surrounded by a protoplanetary disc, a pancake-shaped collection of dust and gas left over from the formation of the star that will eventually coalesce into planets. The thick dust lane, seen nearly edge-on, separates what are thought to be the illuminated surfaces of the disc.

FS Tau B is likely in the process of becoming a T Tauri star, a type of young variable star that hasn’t begun nuclear fusion yet but is beginning to evolve into a hydrogen-fueled star similar to our Sun. Protostars shine with the heat energy released as the gas clouds from which they are forming collapse, and from the accretion of material from nearby gas and dust. Variable stars are a class of star whose brightness changes noticeably over time.

FS Tau A is itself a T Tauri binary system, consisting of two stars orbiting each other.

Protostars are known to eject fast-moving, column-like streams of energised material called jets, and FS Tau B provides a striking example of this phenomenon. The protostar is the source of an unusual asymmetric, double-sided jet, visible here in blue. Its asymmetrical structure may be because mass is being expelled from the object at different rates.

FS Tau B is also classified as a Herbig-Haro object. Herbig–Haro objects form when jets of ionised gas ejected by a young star collide with nearby clouds of gas and dust at high speeds, creating bright patches of nebulosity.

FS Tau is part of the Taurus-Auriga region, a collection of dark molecular clouds that are home to numerous newly forming and young stars, roughly 450 light-years away in the constellations of Taurus and Auriga. Hubble has previously observed this region, whose star-forming activity makes it a compelling target for astronomers. Hubble made these observations as part of an investigation of edge-on dust discs around young stellar objects.




More information

The Hubble Space Telescope is a project of international cooperation between ESA and NASA.

Image credit: NASA, ESA, and K. Stapelfeldt (NASA JPL), G. Kober (NASA/Catholic University of America)




Links



Contacts

Bethany Downer
ESA/Hubble Chief Science Communications Officer
Email:
Bethany.Downer@esahubble.org


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.




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Friday, March 03, 2023

Spiral Pattern Gives Clue to how High-Mass Stars Form

Map of material distribution in the disk around protostar G358-MM1. The white “+” marks the location of the protostar. The contour lines indicate signal strength. The colors represent the line-of-sight velocities. Movement away from the viewer is shown in red/orange and movement towards the viewer is shown in blue/green, indicating that the disk is rotating. Overlaid gray lines indicate the spiral arms identified though data analysis. (Credit: R. A. Burns) Original size (190 KB)

New observations have revealed a spiral pattern in a disk of material around a still forming, but already high-mass, baby star. This indicates that there is gravitational instability in the disk, which has important implications for how high-mass stars form.

As a star forms, a protostellar disk helps to feed material to the nascent “protostar” at its center. For high-mass protostars already exceeding 8 times the mass of the Sun and still growing, it is believed that, rather than a continuous flow, clumps of material from the disk occasionally fall on to the protostar causing short, episodic bursts of growth.

An international research team led by Ross A. Burns at NAOJ used VLBI techniques combining radio telescope arrays around the world to map the maser emissions in the disk around a high-mass protostar known as G358-MM1. This high-mass protostar is the third ever case of an observationally confirmed growth burst, and was intensely studied by the maser monitoring organisation (M2O, www.masermonitoring.org). The team was able to investigate the phenomenon in detail for the first time.

The observational results show clear rotation around the central protostar and a spiral pattern with four arms. Spiral arms in rotating protostellar disks are a sign of instability, a characteristic which was long theorized to be associated with massive star formation, but had yet to be proven observationally. This discovery not only revealed the first spiral driven accretion disk in a high-mass protostar but also links spiral arm instabilities with the episodic growth bursts that are central to high-mass star formation theory.

This research used a new technique known as “heat-wave mapping.” When a clump of material falls from the disk on to the protostar, it releases a burst of energy that heats the inner part of the disk, exciting methanol maser emission. This heat-wave then moves outward, heating increasingly more distant parts of the disk as time passes. By observing the regions that ignited maser emission caused by this heating it was possible to map the surface of the disk in G358-MM1. The team, comprising a collaboration of more than 90 astronomers from across the globe, now hopes to apply this technique to observe the disks of other high-mass protostars which undergo growth bursts in the future.

These results appeared as R. A. Burns et al. “A Keplerian disk with a four-arm spiral birthing an episodically accreting high-mass protostar” in Nature Astronomy on February 27, 2023.

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Wednesday, October 12, 2022

The Mouse That Roared: The Strange Tale of a Brown Dwarf

A brown dwarf was found in an unusual place
Credit: NRAO/AUI/NSF


Recently the Atacama Large Millimeter/Submillimeter Array (ALMA) found an unusual object during observations for the Ophiuchus Disk Survey Employing ALMA (ODISEA). It looked unusual since the data didn’t match the rotating protoplanetary disks the ODISEA project was designed to study, and the closer Dary Ruíz-Rodríguez and her team looked, the stranger the object became.

It began with the detection of an elliptical shell, or bubble of carbon monoxide within an interstellar molecular cloud. This type of gas shell is the type of thing scientists expect to see around AGB stars, which are medium-mass stars at the end of their lives. Such a spherical shell of gas is likely to be formed by our Sun in a few billion years. The Sun shines by fusing hydrogen in its core, which also creates the pressure needed to prevent the Sun from collapsing under its own weight. But in a few billion years the Sun will run out of hydrogen to burn. So it will start to fuse other elements such as helium, which burns much hotter. As a result, the Sun will swell into a red giant, and for a time cast off a bit of its outer layer to create a shell of gas surrounding the star.

When scientists see a shell of gas like this, they expect to see it centered around a red giant star. Sure enough, there was an object in the center of this carbon monoxide shell. The object has a surface temperature of about 3,000 K or less, just as scientists expect from a red giant, but it is very dim. Too dim to be a red giant. The object is so dim it looks like a brown dwarf. This didn’t make any sense. Brown dwarfs are too small to undergo hydrogen fusion in their core, and they don’t cast off an outer layer of gas at the end of their lives.

But looks can be deceiving, so the team looked for alternatives. Perhaps the dim object is a red giant, but much more distant than the shell of gas they observed. The Ophiuchus Molecular cloud, where the target was expected to be, is about 450 light-years from Earth, but given the observed brightness, the red giant would have to be 15,000 to 30,000 light-years away, behind the center of our Galaxy. When the team compared the proper motions and radial velocities of the Ophiuchus members and the target, it strongly suggested that the mysterious object was a member of the Ophiuchus Molecular Cloud and could not be a distant. This means it can’t be a red giant. Just to be sure, the team also looked at near-infrared observations of the object gathered from the European Southern Observatory’s Very Large Telescope (VLT), which further confirmed it isn’t a red giant star.

The behavior of a dying red giant or first hydrostatic core doesn’t fit the data
Credit: Ruíz-Rodríguez et al, 2022


Another idea is that it might be a very young star. Stars form when a region within a molecular cloud gravitationally collapses into a protostar. Early on there is a period where gravitational squeezing of the protostar collapses the central region into a dense core. This is known as the first hydrostatic core mass and is expected to be highly embedded in a dense environment and surrounded by a massive, optically thick disk. As material constantly feeds the central object, it can sometimes leave behind a thin shell of gas surrounding it. But if that were the case, then ALMA should see a dense carbon monoxide core collapsing inward as it falls toward the protostellar core. Surprisingly, ALMA showed a tenuous carbon monoxide shell expanding outward; and on top of that, did not detect any signs of circumstellar disk material. So this isn’t the answer either.

All of the observational data, both from ALMA and the VLT, lead to the same conclusion. This object is a brown dwarf surrounded by an expanding shell of gas. It’s a very strange thing, and Dary Ruíz-Rodríguez and her team think it could be the first observation of a phenomenon known as a deuterium flash.

Brown dwarfs lie in the middle ground between planets and stars. They are about the size of Jupiter, but about 30-70 times more massive. They aren’t stars because they don’t have enough mass to trigger the fusion of hydrogen to helium in the usual way. But they can massive enough to fuse an isotope of hydrogen known as deuterium. Elements are defined by the number of protons they have in their nucleus, but many elements have multiple varieties, or isotopes, that have different numbers of neutrons. The nucleus of regular hydrogen is just a single proton. Deuterium, also known as hydrogen-2 has one proton and one neutron. There is only about 1 deuterium atom for every 500 hydrogen atoms, but brown dwarfs are justmassive enough to fuse deuterium with hydrogen and harness it as a power source for a short while.

We still don’t understand all the details of deuterium fusion, but astronomers think that when brown dwarfs form the early onset of deuterium fusion triggers a rapid release of energy known as a deuterium flash. Such a flash could eject an outer layer of gas, just as we see with this particular brown dwarf.

The data can’t completely prove a deuterium flash as the cause, and the team is careful to note other possible solutions such as a collision between the brown dwarf and a small planet. But it’s clear that whatever the cause, this mousey brown dwarf has a very strange tale indeed.

Ruíz-Rodríguez, Dary A., et al. “Discovery of a brown dwarf with quasi-spherical mass-loss.” arXiv preprint arXiv:2209.00759 (2022), accepted for publication in The Astrophysical Journal.

By Brian Koberlein

About the Author:

Brian Koberlein is a science writer for NRAO. He has a Ph.D. in Physics from the University of Connecticut, and has published research in physics and astrophysics. Together with David Meisel, he is the author of Astrophysics Through Computation, published by Cambridge University Press.

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Saturday, November 20, 2021

Hubble Spies Newly Forming Star Incubating in IC 2631


IC 2631
Main Image Credit: NASA, ESA, T. Megeath (University of Toledo), and K. Stapelfeldt (Jet Propulsion Laboratory); Processing: Gladys Kober (NASA/Catholic University of America)


Hubble's sharp eye captures a protostar designated J1672835.29-763111.64 in the reflection nebula IC 2631. Credits: NASA, ESA, T. Megeath (University of Toledo), K. Stapelfeldt (Jet Propulsion Laboratory), and ESO; Processing: Gladys Kober (NASA/Catholic University of America)

Stars are born from clouds of gas and dust that collapse under their own gravitational attraction. As the cloud collapses, a dense, hot core forms and begins gathering dust and gas, creating an object called a “protostar.”

This Hubble infrared image captures a protostar designated J1672835.29-763111.64 in the reflection nebula IC 2631, part of the Chamaeleon star-forming region in the southern constellation Chamaeleon. Protostars shine with the heat energy released by clouds contracting around them and the accumulation of material from the nearby gas and dust. Eventually enough material collects, and the core of a protostar becomes hot and dense enough for nuclear fusion to begin, and the transformation into a star is complete. The leftover gas and dust can become planets, asteroids, comets, or remain as dust.

This image is part of a Hubble survey targeting 312 protostars within molecular clouds previously identified with the Spitzer and Herschel infrared space observatories. Protostars are visible primarily in infrared light since they emit a lot of heat energy, and their visible light is obscured by the dust around them. Hubble’s advanced infrared capabilities could better resolve the protostars and examine their structure, including the accumulating gas and dust and faint companion objects.


Source: NASA/Hubble



Thursday, June 18, 2020

HOPS 383: X-rays From a Newborn Star Hint at Our Sun's Earliest Days

HOPS 383

Credit X-ray: NASA/CXC/Aix-Marseille University/N. Grosso et al.;
Illustration: NASA/CXC/M. Weiss


Tour of X-rays From a Newborn Star Hint at Our Sun's Earliest Days - More Animations



By detecting an X-ray flare from a very young star using NASA's Chandra X-ray Observatory, researchers have reset the timeline for when stars like the Sun start blasting high-energy radiation into space, as reported in our latest press release. This is significant because it may help answer some questions about our Sun's earliest days as well as some about the Solar System today.

This artist's illustration depicts the object where astronomers discovered the X-ray flare. HOPS 383 is called a young "protostar" because it is in the earliest phase of stellar evolution that occurs right after a large cloud of gas and dust has started to collapse. Once it has matured HOPS 383, which is located about 1,400 light years from Earth, will have a mass about half that of the Sun.

The illustration shows HOPS 383 surrounded by a donut-shaped cocoon of material (dark brown) — containing about half of the protostar's mass — that is falling in towards the central star. Much of the light from the infant star in HOPS 383 is unable to pierce through this cocoon, but X-rays from the flare (blue) are powerful enough to do so. Infrared light emitted by HOPS 383 is scattered off the inside of the cocoon (white and yellow). A version of the illustration with a region of the cocoon cut out shows the bright X-ray flare from HOPS 383 and a disk of material falling towards the protostar.

Illustration with Cocoon Cut Out
Credit: NASA/CXC/M.Weiss

Chandra observations in December 2017 revealed the X-ray flare, which lasted for about 3 hours and 20 minutes. The flare is shown as a continuous loop in the inset box of the illustration. The rapid increase and slow decrease in the amount of X-rays is similar to the behavior of X-ray flares from young stars more evolved than HOPS 383. No X-rays were detected from the protostar outside this flaring period, implying that during these times HOPS 383 was at least ten times fainter, on average, than the flare at its maximum. It is also 2,000 times more powerful than the brightest X-ray flare observed from the Sun, a middle-aged star of relatively low mass.

As material from the cocoon falls inward toward the disk, there is also an exodus of gas and dust. This "outflow" removes angular momentum from the system, allowing material to fall from the disk onto the growing young protostar. Astronomers have seen such an outflow from HOPS 383 and think powerful X-ray flare like the one observed by Chandra could strip electrons from atoms at the base of it. This may be important for driving the outflow by magnetic forces.

Furthermore, when the star erupted in X-rays, it would have also likely driven energetic flows of particles that collided with dust grains located at the inner edge of the disk of material swirling around the protostar. Assuming something similar happened in our Sun, the nuclear reactions caused by this collision could explain unusual abundances of elements in certain types of meteorites found on Earth.

No other flares from HOPS 383 were detected over the course of three Chandra observations with a total exposure of just under a day. Astronomers will need longer X-ray observations to determine how frequent such flares are during this very early phase of development for stars like our Sun.

A paper describing these results appeared in the journal of Astronomy & Astrophysics and is available online at https://arxiv.org/abs/2006.02676. The authors of the paper are Nicolas Grosso (Astrophysics Laboratory of Marseille at Aix-Marseille University in France), Kenji Hamaguchi (Center for Research and Exploration in Space Science & Technology and NASA's Goddard Space Flight Center in Greenbelt, MD), David Principe (Massachusetts Institute of Technology), and Joel Kastner (Rochester Institute of Technology).

NASA's Marshall Space Flight Center manages the Chandra program. The Smithsonian Astrophysical Observatory's Chandra X-ray Center controls science and flight operations from Cambridge and Burlington, Massachusetts.




Fast Facts for HOPS 383:

Scale: X-ray image is about 9 arcsec (0.06 light years) across.
Category:
Normal Stars & Star Clusters
Coordinates (J2000): RA 5h 35m 29s | Dec -4° 59´ 50"
Constellation:
Orion
Observation Date: 3 observations from December 13-14, 2017
Observation Time: 23 hours 17 minutes
Obs. ID: 18927, 20882-20883
Instrument:
ACIS
References: Grosso, N.,et al, 2020 A&A. arXiv:2006.02676
Distance Estimate: About 1,400 light years


Saturday, February 01, 2020

Heat wave signals the growth of a stellar embryo

Artistic impression of a protostar that accretes gas from a circumstellar disk and grows. Part of the material is ejected by jets perpendicular to the plane of the disk. Gas continues to fall from the outer shell onto the disk. This can produce instabilities, which occasionally lead to increased infall onto the protostar. Since protostars are deeply embedded in dense clouds, they are difficult to observe directly. Credit: NASA/JPL-Caltech/R. Hurt (SSC)

Measuring natural microwave lasers sharpens research into the formation of massive stars

An international research team with the Max Planck Institute for Astronomy (MPIA) participating has detected a propagating heat wave near a massive protostar. It confirms the scenario that such objects grow in bursts. This wave became visible by observing naturally generated microwave lasers, whose spatial arrangement changed unexpectedly rapid.

Although the basic principles of star formation are generally well understood, the existence of massive stars is still puzzling in some details. Due to the enormous gravitational pressure inside a massive protostar, nuclear fusion starts while it is still growing. Further growth is made more difficult by the radiation pressure of the young star. In order to overcome this resistance, the accretion of material from a circumstellar disk might occur in phases of single large packets. During this process its brightness increases strongly for a short time. However, such fluctuations are difficult to observe because protostars are deeply embedded in dense clouds.

An international network of astronomers, the Maser Monitoring Organisation (M2O), in which the Max Planck Institute for Astronomy (MPIA) is involved, has now detected a heat wave propagating in the vicinity of the massive protostar G358-MM1 through observations with several radio telescopes. Subsequent observations have confirmed that it was caused by a temporary increase in accretion activity.

The heat wave was revealed by the activity of masers. Masers are the equivalent of lasers, which, however, emit microwave radiation - or radio waves - instead of visible light. They occur in massive star formation regions as natural, very bright and compact sources of radiation. Both the comparatively high temperatures and densities as well as the richness of complex chemistry in such environments favour their formation. In the present case, it is methanol (methyl alcohol) that is excited by the intense radiation of the protostar and causes masers.

Illustration of the mechanism by which the propagating heat wave stimulates maser activity in the material surrounding the protostar. The wave locally increases the temperature of the gas for a short time. In this region the characteristic radiation of methanol masers is emitted. As the wave propagates, the positions of the maser emission change. Credit: R. A. Burns/MPIA (cropped)

The scientists, who recorded radio-interferometric data with a high spatial resolution of 0.005 arc seconds (1 angular degree = 3600 arc seconds) at intervals of several weeks, discovered that the masers appeared to propagate outwards. However, the determined velocity of up to 8% of the speed of light was too high to be compatible with the movement of gas. Instead, astronomers concluded that a wave traversing the surrounding medium caused maser activity on its way. This heat wave has its origin in the accretion of gas on the protostar.

"The M2O observations are among the first to provide detailed evidence of the immediate effects of an accretion burst in a massive protostar in sufficient detail to support the episodic accretion theory of massive star formation," explains Ross Burns of the National Astronomical Observatory of Japan, who heads the research group.

Hendrik Linz from MPIA adds: "To observe the actual heat wave directly in the thermal infrared would be very complicated. As strong radiation sources in an easily accessible wavelength range, masers are excellent observation tools for indirectly tracing the passage of such a heat wave on small spatial scales, and thus on short time scales after an outburst".

The partners in the M2O project will continue to monitor masers in many star formation regions to learn more about the growth of massive protostars.




Authors

Dr. Markus Nielbock
Press and public relations officer
Phone:+49 6221 528-134
Email: pr@mpia.de
Max Planck Institute for Astronomy, Heidelberg

Dr. Hendrik Linz
Phone:+49 6221 528-402
Email: linz@mpia.de
Max Planck Institute for Astronomy, Heidelberg



Original Publication

1. R. A. Burns et al. A heatwave of accretion energy traced by masers in the G358-MM1 high-mass protostar 
Nature Astronomy (2020)

Source / DOI



Link 
Maser Monitoring Organisation (M2O)



Collaboration

This study was made possible by a cooperation of the following research institutions:

Mizusawa VLBI Observatory, National Astronomical Observatory of Japan; Korea Astronomy and Space Science Institute; NARIT, Thailand; University of Science and Technology, Korea; Ural Federal University, Russia; Thüringer Landessternwarte, Germany; The University of Western Ontario, Canada; Hartebeesthoek Radio Astronomy Observatory, South Africa; Center for Astronomy, Ibaraki University, Japan; Centre for Astronomy, Nicolaus Copernicus University, Poland; School of Natural Sciences, University of Tasmania, Australia; Xinjiang Astronomical Observatory, Chinese Academy of Sciences, China; Dublin Institute for Advanced Studies, Ireland; NRAO, USA; Australia Telescope National Facility, CSIRO, Australia; Max Planck Institute for Astronomy, Germany; INAF Osservatorio Astronomico di Cagliari, Italy; Space Research Unit, Physics Department, North West University, South Africa; Department of Physics and Astronomy, Faculty of Physical Sciences, University of Nigeria; Institute for Radio Astronomy, The Netherlands; Max Planck Institute for Radioastronomy, Germany