Showing posts with label SNR W44. Show all posts
Showing posts with label SNR W44. Show all posts

Friday, January 02, 2026

Veritas explores the nature of a mysterious gamma-ray emitter

Significance map of region around HESS J1857+026 in 0.3–1 TeV (left) and in 1–10 TeV (right). The white contours represent significance values of 5, 6, and 7 𝜎. The blue dot marks the location of PSR J1856+0245. Credit: Chen et al., 2025
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Astronomers have employed the Very Energetic Radiation Imaging Telescope Array System (VERITAS) to observe a mysterious gamma-ray emitting source designated HESS J1857+026. Results of the observational campaign, published December 19 on the pre-print server arXiv, shed more light on the nature of this source.

Sources emitting gamma radiation with photon energies between 100 GeV and 100 TeV are called very high energy (VHE) gamma-ray sources. Observations show that these sources are often blazars or binary star systems containing a compact object. However, the nature of many VHE gamma-ray sources is still not well understood.

The nature of HESS J1857+026 perplexes astronomers

Discovered in 2008 with the High Energy Stereoscopic System (HESS), HESS J1857+026 is one of such VHE gamma-ray sources. It has been the target of multiple observations in high-energy and very-high energy bands, however its true nature still remains a mystery.

Despite the detection of a nearby pulsar, designated PSR J1856+0245, there have been no confirmed counterparts, like a supernova remnant (SNR) shell or other extended structure, in X-ray or other wavelengths.

That is why a team of astronomers led by Yu Chen of the University of California, Los Angeles (UCLA) decided to take a closer look at HESS J1857+026 with VERITAS, which is an array of four imaging atmospheric Cherenkov telescopes located at the Fred Lawrence Whipple Observatory in Arizona. VERITAS is sensitive to gamma rays in the energy range of 100 GeV to above 30 TeV and has an angular resolution of below 0.1 degrees at 1 TeV.

"VERITAS has observed the region of HESS J1857+026 from 2008 to 2016, including serendipitous observation of other targets, e.g., the supernova remnant W44, in the FOV [field-of-view]. After quality selection requiring good weather and a stable trigger rate, about 30 hours of data are used in this analysis," the researchers explain.

Where do these gamma-rays come from?

According to the paper, the significance map of the region around HESS J1857+026 in 0.3–1 TeV and in 1–10 TeV shows that the pulsar PSR J1856+0245 is clearly displaced from the VHE emission center. This supports previous suggestions that the gamma-ray emission seen from HESS J1857+026 is potentially produced by a pulsar wind nebula (PWN) powered by PSR J1856+0245.

Furthermore, the observations identified a northern component, which shows up at energies above 1 TeV. This additional structure could indicate a separate source or it could originate from the expanse of the source itself due to faster diffusion of electrons with higher energies. Therefore, additional observations are required to make any further conclusions.

Moreover, based on the collected data, the astronomers calculate that HESS J1857+026 has a diffusion length of about 321 light years. They estimate that the cooling time for the electron population responsible for the gamma rays are on the order of tens of thousand years, thus larger or comparable to the age of the pulsar. These calculations point to a diffusion an order of magnitude lower than the galactic average.

In concluding remarks, the authors of the paper underline that HESS J1857+026 has an extended nature and its morphology seems to indicate an expansion of the source region or an unrelated source with increased energy.




Written for you by our author Tomasz Nowakowski, edited by Sadie Harley, and fact-checked and reviewed by Andrew Zinin—this article is the result of careful human work. We rely on readers like you to keep independent science journalism alive. If this reporting matters to you, please consider a donation (especially monthly). You'll get an ad-free account as a thank-you.



More information: Y. Chen, A VERITAS view of HESS J1857+026 within a multi-wavelength analysis, arXiv (2025). DOI: 10.48550/arxiv.2512.17184

Journal information: arXiv

© 2025 Science X Network



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Study sheds more light on the nature of HESS J1857+026


Thursday, October 08, 2015

Banking X-Ray Data for the Future




Cambridge, MA - Archives, in their many forms, save information from today that people will want to access and study in the future. This is a critical function of all archives, but it is especially important when it comes to storing data from today’s modern telescopes.

NASA's Chandra X-ray Observatory has collected data for over sixteen years on thousands of different objects throughout the Universe. Once the data is processed, all of the data goes into an archive and is available to the public.

To celebrate American Archive Month, we are releasing a collection of new images from the Chandra archive.

By combining data from different observation dates, new perspectives of cosmic objects can be created. With archives like those from Chandra and other major observatories, such vistas will be available for future exploration.

The objects in this year's archive release are:

W44: Also known as G34.7-0.4, W44 is an expanding supernova remnant that is interacting with dense interstellar material that surrounds it. X-rays from Chandra (blue) show that hot gas fills the shell of the supernova remnant as it moves outward. Infrared observations from the Spitzer Space Telescope reveal the shell of the supernova remnant (green) as well as the molecular cloud (red) into which the supernova remnant is moving and the stars in the field of view.

SN 1987A: First seen in 1987, this supernova (dubbed SN 1987A) was the brightest supernova and nearest one to Earth in the last century. In a supernova explosion, a massive star runs out of fuel then collapses onto their core, flinging the outer layers of the star into space. By combining X-ray data from Chandra (blue) with optical data from the Hubble Space Telescope (appearing orange and red), astronomers can observe the evolution of the expanding shell of hot gas generated by the explosion and watch as a shock wave from the blast heats gas that once surrounded the doomed star. The two bright stars near SN 1987A are not associated with the supernova.

Kesteven 79: Like SN 1987A, this object, known as Kesteven 79, is the remnant of a supernova explosion, but one that went off thousands of years ago. When massive stars run out of fuel, their cores collapse, generating a shock wave that flings the outer layers of the star into space. An expanding shell of debris and the surviving dense central core are often heated to millions of degrees, and give off X-rays. In this image of Kesteven 79, X-rays detected by Chandra (red, green, and blue) have been combined with an optical image from the Digitized Sky Survey of the field of view that reveals the stars (appearing as white).

MS 0735.6+7421: The galaxy cluster MS 0735.6+7421 is home to one of the most powerful eruptions ever observed. X-rays detected by Chandra (blue) show the hot gas that comprises much of the mass of this enormous object. Within the Chandra data, holes, or cavities, can be seen. These cavities were created by an outburst from a supermassive black hole at the center of the cluster, which ejected the enormous jets detected in radio waves (pink) detected the Very Large Array. These data have been combined with optical data from Hubble of galaxies in the cluster and stars in the field of view (orange).

3C295: The vast cloud of 50-million-degree gas that pervades the galaxy cluster 3C295 is only visible with an X-ray telescope like Chandra. This composite image shows the superheated gas, detected by Chandra (pink), which has a mass equal to that of a thousand galaxies. Hubble's optical data (yellow) reveal some of the individual galaxies in the cluster. Galaxy clusters like 3C295 also contain large amounts of dark matter, which holds the hot gas and galaxies together. The total mass of the dark matter needed is typically five times as great as the gas and galaxies combined.

Guitar Nebula: The pulsar B2224+65 is moving through space very rapidly. Because of its high speed, the pulsar is creating a bow shock in its wake. This structure is known as the Guitar Nebula and the likeness of the musical instrument can be seen in the optical data (blue) of this composite image taken by Hubble and the Palomar Observatory. X-ray data from Chandra (pink) reveal a long jet that is coincident with the location of the pulsar at the tip of the "guitar," but is not aligned with its direction of motion. Astronomers will continue to study this system to determine the nature of this X-ray jet.

Headquartered in Cambridge, Mass., the Harvard-Smithsonian Center for Astrophysics (CfA) is a joint collaboration between the Smithsonian Astrophysical Observatory and the Harvard College Observatory. CfA scientists, organized into six research divisions, study the origin, evolution and ultimate fate of the universe.


For more information, contact:

Megan Watzke
Chandra X-ray Center, Cambridge, Mass.
617-496-7998
mwatzke@cfa.harvard.edu


Wednesday, November 14, 2012

The curious shape of a supernova remnant in a star-forming cloud

Data from two ESA missions combine in a new view of the peculiar supernova remnant W44. The filamentary shell-like structure, detected by the Herschel Space Observatory at far-infrared wavelengths, is filled with hot gas that shines brightly in X-rays, as seen by the XMM-Newton X-ray Observatory. This composite image highlights how the complex morphology of this remnant has been shaped by its interaction with its parent molecular cloud, the star-forming region W48.

Supernova remnant W44 (Composite)
 Copyright: ESA/PACS/SPIRE/Quang Nguyen Luong & Frederique Motte, H
OBYS Key Program consortium (far-infrared); 
ESA/XMM-Newton (X-rays)

The most massive stars end their life cycles as supernovae – spectacular explosions that release enormous amounts of energy and matter into the surrounding interstellar space. These powerful events leave behind supernova remnants, expanding clouds of hot gas and highly-energetic particles that keep shining brightly across the electromagnetic spectrum for thousands of years after the stellar explosion. Supernova remnants display a variety of shapes and features that are often heavily influenced by the environment into which the ejected material is expanding.

The supernova remnant W44 (SNR W44) is a prime example of the interaction between the remains of a supernova and the dense interstellar material around it. The composite image from Herschel and XMM-Newton illustrates that SNR W44 consists of an asymmetric expanding shell about 100 light-years across that is filled with hot, X-ray emitting gas. Around 10 000 light-years from us, SNR W44 is located in the molecular cloud complex known as W48, a rich star-forming region where a multitude of massive stars are being born.

 Annotated composite Herschel and XMM-Newton image of SNR W44

The Herschel view of SNR W44 shows particular features of the supernova remnant interacting with its parent molecular cloud: just above the centre of the image, the shell is impacting the arc-shaped bright feature to the right. This object, known as G34.8-0.7, is an HII region – a pocket of gas that is being energised and ionised by the action of a nearby young, massive star. Traces of dust present in the HII region's gas are also being heated up, making it shine brightly at the shortest wavelengths probed by Herschel (70 microns, shown in violet in this image).

 Most supernova remnants either possess a glowing shell created by the ejecta as they sweep up interstellar material, or the remnant has a more diffuse, nebula-like structure that is usually powered by the wind of a pulsar – a spinning neutron star which originates from the core of the exploded star. SNR W44 is one of the few supernova remnants that overlaps between these two classes. It is therefore classified as a mixed-morphology supernova remnant.

The expanding shell can be seen as the large violet bubble with filamentary texture occupying the left half of the image. As the shell blasts outwards, shock waves heat up the surrounding material, raising the temperature of dust particles present there to about 100 K. This causes them to radiate at the shortest of the wavelengths probed by Herschel.

With a temperature of several million K, the hot gas inside the bubble gives off large amounts of X-rays. These appear in the image as the dark blue and light blue clouds that fill the bubble, and correspond to lower-energy (1.2-2 keV) and higher-energy (2-8 keV) X-rays detected by XMM-Newton.

Herschel image of SNR W44.
Credit: ESA/PACS/SPIRE/Quang Nguyen Luong & Frederique Motte, 
HOBYS Key Program consortium

  XMM-Newton image of SNR W44.
Credit: ESA/XMM-Newton

As in other mixed-morphology supernova remnants, the presence of hot gas inside a shell that is expanding and cooling down is quite puzzling. One of the possible explanations is linked to the interaction between the remnant and its clumpy environment of gas and dust clouds. Dense and cool cloudlets from the surroundings could be swept over by the expanding shell and evaporate once inside it, due to the higher temperature, contributing to replenishing the remnant's interior with gas.

Also visible in SNR W44 is the pulsar PSR 1853+01, which most likely derives from the core of the supernova's progenitor star. The pulsar, which shines brightly both in X-rays and radio waves, can be seen in the XMM-Newton image as the bright point source towards the top left of the remnant. The age of the remnant was estimated by measuring how much the pulsar’s spin slows down over time and is believed to be a relatively young 20 000 years. The pulsar drives a wind of highly energetic particles but this represents only a minor contribution to the remnant's X-ray emission.

Two HII regions stand out in violet in the image, showing the intense activity of star formation in W48. These are G035.1387-00.7622 in the upper part of the image to the right, and G35.0-0.5 just to the right of the image centre. The bright flecks scattered across the image are denser clumps in the turbulent cloud medium and are the seeds of future massive stars.

In the lower left corner of the image, the diffuse glow corresponds to emission from warm dust in the Galactic Plane, the disc-like structure that contains most of the stars and star-forming clouds in our Galaxy, the Milky Way.

Fast Facts
 

Depicted object:     W44 supernova remnant (also known as 3C 392)
Additional details:     W44 is a mixed-morphology supernova remnant, hosting the pulsar PSR 1853+01; visible in the image are also the HII regions G34.8-0.7, G35.0-0.5 and G035.1387-00.7622. The sources belong to the vast molecular complex known as W48.
Constellation:     Aquila (the Eagle)
Distance:     about 10 000 light years
Image Orientation:     North is about 45 degrees clockwise of the rightward direction; East is about 45 degrees counterclockwise of the rightward direction

Image


Satellite:     Herschel
Instruments:     PACS; SPIRE
Wavelengths:     70 μm (PACS; blue); 160 μm (PACS; green); 250 μm (SPIRE; red)
Field of view:     about 1 degree across
Observation dates:     18-19 September 2010
Release date:     14 November 2012
Credit:     ESA/PACS/SPIRE/Quang Nguyen Luong & Frederique Motte, HOBYS Key Program consortium
Satellite:     XMM-Newton
Instruments:     EPIC
Energy bands:     1.2-2 keV (shown in dark blue); 2-8 keV (shown in light blue)
Field of view:     about 0.3 degrees across
Release date:     14 November 2012
Credit:     ESA/XMM-Newton

Contacts

Markus Bauer

ESA Science and Robotic Exploration Communication Officer
Tel: +31 71 565 6799
Mob: +31 61 594 3 954
Email: markus.bauer@esa.int