GPS News  
STELLAR CHEMISTRY
Kilonova afterglow potentially spotted for first time
by Staff Writers
Evanston IL (SPX) Mar 01, 2022

File image of GW170817.

For the first time, Northwestern University-led astronomers may have detected an afterglow from a kilonova.

A kilonova occurs when two neutron stars - some of the densest objects in the universe - merge to create a blast 1,000 times brighter than a classical nova. In this case, a narrow, off-axis jet of high-energy particles accompanied the merger event, dubbed GW170817. Three-and-a-half years after the merger, the jet faded away, revealing a new source of mysterious X-rays.

As the leading explanation for the new X-ray source, astrophysicists believe expanding debris from the merger generated a shock - similar to the sonic boom from a supersonic plane. This shock then heated surrounding materials, which generated X-ray emissions, known as a kilonova afterglow. An alternative explanation is materials falling toward a black hole - formed as a result of the neutron star merger - caused the X-rays.

Either scenario would be a first for the field. The study was published today (Feb. 28), in The Astrophysical Journal Letters.

"We have entered uncharted territory here in studying the aftermath of a neutron star merger," said Northwestern's Aprajita Hajela, who led the new study. "We are looking at something new and extraordinary for the very first time. This gives us an opportunity to study and understand new physical processes, which have not before been observed."

Hajela is a graduate student at Northwestern's Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA) and in the Department of Physics and Astronomy in the Weinberg College of Arts and Sciences.

On Aug. 17, 2017, GW170817 made history as the first neutron-star merger detected by both gravitational waves and electromagnetic radiation (or light). Since then, astronomers have been using telescopes around the world and in space to study the event across the electromagnetic spectrum.

Using NASA's Chandra X-ray Observatory, astronomers observed X-ray emissions from a jet moving very close to the speed of light produced by the neutron star merger. Starting in early 2018, the jet's X-ray emission steadily faded as the jet continued to slow and expand. Hajela and her team then noticed from March 2020 until the end of 2020, the decline in brightness stopped, and the X-ray emission was approximately constant in brightness.

This was a significant clue.

"The fact that the X-rays stopped fading quickly was our best evidence yet that something in addition to a jet isbeing detected in X-rays in this source," said Raffaella Margutti, astrophysicist at the University of California at Berkeley and a senior author of the study. "A completely different source of X-rays appears to be needed to explain what we're seeing."

The researchers believe a kilonova afterglow or black hole are likely behind the X-rays. Neither scenario has ever before been observed.

"This would either be the first time we've seen a kilonova afterglow or the first time we've seen material falling onto a black hole after a neutron star merger," said study co-author Joe Bright, also from the University of California at Berkeley. "Either outcome would be extremely exciting."

To distinguish between the two explanations, astronomers will keep monitoring GW170817 in X-rays and radio waves. If it is a kilonova afterglow, the X-ray and radio emissions are expected to get brighter over the next few months or years. If the explanation involves matter falling onto a newly formed black hole, then the X-ray output should stay steady or decline rapidly, and no radio emission will be detected over time. "Further study of GW170817 could have far-reaching implications," said study co-author Kate Alexander, a CIERA postdoctoral fellow at Northwestern. "The detection of a kilonova afterglow would imply that the merger did not immediately produce a black hole. Alternatively, this object may offer astronomers a chance to study how matter falls onto a black hole a few years after its birth."

The study, "Evidence for X-ray emission in excess to the jet afterglow decay 3.5 years after the binary neutron star merger GW170817: A new emission component," was supported by NASA, the National Science Foundation, the U.S. Department of Energy and the Royal Astronomical Society.

Research Report: "The emergence of a new source of X-rays from the binary neutron star merger"


Related Links
Northwestern University
Stellar Chemistry, The Universe And All Within It


Thanks for being here;
We need your help. The SpaceDaily news network continues to grow but revenues have never been harder to maintain.

With the rise of Ad Blockers, and Facebook - our traditional revenue sources via quality network advertising continues to decline. And unlike so many other news sites, we don't have a paywall - with those annoying usernames and passwords.

Our news coverage takes time and effort to publish 365 days a year.

If you find our news sites informative and useful then please consider becoming a regular supporter or for now make a one off contribution.
SpaceDaily Contributor
$5 Billed Once


credit card or paypal
SpaceDaily Monthly Supporter
$5 Billed Monthly


paypal only


STELLAR CHEMISTRY
Astronomers map mysterious element in space
Lund, Sweden (SPX) Feb 25, 2022
A research team led by Lund University in Sweden has provided an important clue to the origin of the element Ytterbium in the Milky Way, by showing that the element largely originates from supernova explosions. The groundbreaking research also provides new opportunities for studying the evolution of our galaxy. The study is published in Astronomy and Astrophysics. Ytterbium is one of four elements in the periodic table named after the Ytterby mine in the Stockholm archipelago. The element was firs ... read more

Comment using your Disqus, Facebook, Google or Twitter login.



Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle

STELLAR CHEMISTRY
Risks of using AI to grow our food are substantial

These solar panels pull in water vapor to grow crops in the desert

Big data arrives on the farm

We should be eating more insects and using their waste to grow crops, says plant ecologist

STELLAR CHEMISTRY
DLR and NASA are jointly developing a software package for quantum computers

Using two different elements in hybrid atomic quantum computers

NGI uses twist to engineer 2D semiconductors with built-in memory functions

Magnetic excitations could provide information transfer without heat loss

STELLAR CHEMISTRY
Eight dead in Romania chopper, fighter jet crashes

US recovers stealth jet lost in South China Sea

Low-profile Russian air force puzzles Western experts

Sign Up to Fly with NASA Using the Flight Log Experience

STELLAR CHEMISTRY
US announces new emissions standards for trucks and buses

Sony and Honda plan joint electric vehicle firm

Polluting drivers may have to pay in all of London

Ford unveils new structure as it speeds electric car push

STELLAR CHEMISTRY
Russia banks turn to China after Visa, Mastercard suspension

Asian markets fall again, oil builds on gains as Ukraine war rages

Beijing wary of extending economic lifeline to Russia

South Korea to hit Belarus with export controls

STELLAR CHEMISTRY
Amazon rainforest is losing resilience: New evidence from satellite data analysis

Stora Enso suspends Russia forestry operations

New study shows that Earth's coldest forests are shifting northward with climate change

DR Congo flouting forest protection deal: Greenpeace

STELLAR CHEMISTRY
China launches new land-observation satellite

Atlas V rocket launches new NOAA weather satellite

Planet Labs PBC launches next generation PlanetScope with Eight Spectral Bands

Study reveals chemical link between wildfire smoke and ozone depletion

STELLAR CHEMISTRY
Atom by atom: building precise smaller nanoparticles with templates

Ring my string: Building silicon nano-strings

Nanotube films open up new prospects for electronics

Using the universe's coldest material to measure the world's tiniest magnetic fields









The content herein, unless otherwise known to be public domain, are Copyright 1995-2024 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. All articles labeled "by Staff Writers" include reports supplied to Space Media Network by industry news wires, PR agencies, corporate press officers and the like. Such articles are individually curated and edited by Space Media Network staff on the basis of the report's information value to our industry and professional readership. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. General Data Protection Regulation (GDPR) Statement Our advertisers use various cookies and the like to deliver the best ad banner available at one time. All network advertising suppliers have GDPR policies (Legitimate Interest) that conform with EU regulations for data collection. By using our websites you consent to cookie based advertising. If you do not agree with this then you must stop using the websites from May 25, 2018. Privacy Statement. Additional information can be found here at About Us.