Showing posts with label SN 2011dh. Show all posts
Showing posts with label SN 2011dh. Show all posts

IN A STAR’S FINAL DAYS, ASTRONOMERS HUNT “SIGNAL OF IMPENDING DOOM”

Posted by carsimulator on Friday, December 2, 2011

A Large Binocular Telescope image which shows the supernova in M51 is available here for the media.

COLUMBUS, Ohio – An otherwise nondescript binary star system in the Whirlpool Galaxy has brought astronomers tantalizingly close to their goal of observing a star just before it goes supernova.

The study, submitted in a paper to the Astrophysical Journal, provides the latest result from an Ohio State University galaxy survey underway with the Large Binocular Telescope, located in Arizona.

In the first survey of its kind, the researchers have been scanning 25 nearby galaxies for stars that brighten and dim in unusual ways, in order to catch a few that are about to meet their end. In the three years since the study began, this particular unnamed binary system in the Whirlpool Galaxy was the first among the stars they’ve cataloged to produce a supernova.

The astronomers were trying to find out if there are patterns of brightening or dimming that herald the end of a star’s life. Instead, they saw one star in this binary system dim noticeably before the other one exploded in a supernova during the summer of 2011.

Though they’re still sorting through the data, it’s likely that they didn’t get any direct observations of the star that exploded – only its much brighter partner.

Yet, principal investigator Christopher Kochanek, professor of astronomy at Ohio State and the Ohio Eminent Scholar in Observational Cosmology, does not regard this first result as a disappointment. Rather, it’s a proof of concept.

“Our underlying goal is to look for any kind of signature behavior that will enable us to identify stars before they explode,” he said. “It’s a speculative goal at this point, but at least now we know that it’s possible.”

“Maybe stars give off a clear signal of impending doom, maybe they don’t,” said study co-author Krzystof Stanek, professor of astronomy at Ohio State, “But we’ll learn something new about dying stars no matter the outcome.”

Postdoctoral researcher Dorota Szczygiel, who led the study of this supernova, explained why the galaxy survey is important.

“The odds are extremely low that we would just happen to be observing a star for several years before it went supernova. We would have to be extremely lucky,” she said.

“With this galaxy survey, we’re making our own luck. We’re studying all the variable stars in 25 galaxies, so that when one of them happens go supernova, we’ve already compiled data on it.”
The supernova, labeled 2011dh, was first detected on May 31 and is still visible in telescopes. It originated from a binary star system in the Whirlpool Galaxy – also known as M51, one of the galaxies that the Ohio State astronomers have been observing for three years.

The system is believed to have contained one very bright blue star and one even brighter red star. From what the astronomers can tell, it’s likely that the red star is the one that dimmed over the three years, before the blue star initiated the supernova.

When the Ohio State researchers reviewed the Large Binocular Telescope data as well as Hubble Space Telescope images of M51, they saw that the red star had dimmed by about 10 percent over three years, at a pace of three percent per year.

Szczygiel believes that the red star likely survived its partner’s supernova.

“After the light from the explosion fades away, we should be able to see the companion that did not explode,” she said.

As astronomers gather data from more supernovae – Kochanek speculates that as many as one per year could emerge from their data set – they could assemble a kind of litmus test to predict whether a particular star is near death. Whether it’s going to spawn a supernova or shrink into a black hole, there may be particular signals visible on the surface, and this study has shown that those signals are detectable.

The team won’t be watching our sun for any changes, however. At less than 10 percent of the mass of the star in supernova 2011dh, our star will most likely meet a very boring end.

“There’ll be no supernova for our sun – it’ll just fizzle out,” Kochanek said. “But that’s okay – you don’t want to live around an exciting star.”

This research was supported by the National Science Foundation.

The Large Binocular Telescope is an international collaboration among institutions in the United Sates, Italy, and Germany. The LBT Corporation partners are: the University of Arizona on behalf of the Arizona University System; the Instituto nazionale di Astrofisica, Italy; the LBT Beteiligungsesellschaft, Germany, representing the Max Planck Society, the Astrophysical Institute of Potsdam, and Heidelberg University; the Ohio State University; and the Research Corporation, on behalf of the University of Notre Dame, University of Minnesota, and University of Virginia.

***

Contact:

Christopher Kochanek, (614) 292-5954;
Kochanek.1@osu.edu
Dorota Szczygiel, (614) 688-7426; Szczygiel.3@osu.edu

Written by Pam Frost Gorder, (614) 292-9475; Gorder.1@osu.edu

More aboutIN A STAR’S FINAL DAYS, ASTRONOMERS HUNT “SIGNAL OF IMPENDING DOOM”

A Yellow Supergiant Progenitor of a Massive Star Supernova in M51

Posted by carsimulator on Wednesday, August 10, 2011

Figure 1: HST pre-supernova image (left)

and Gemini NIRI post-supernova image (right)




Another supernova has exploded in the Whirlpool Galaxy (M51), and now astronomers have identified its unusual progenitor using data from Gemini.



Several amateur astronomers independently discovered the bright supernova, designated SN 2011dh, early in June 2011. The object was quickly classified as a Type IIb supernova based on its spectrum; this class of supernovae likely arises from massive stars that have lost some, but not all, of their outermost layers of hydrogen.



Within hours of the discovery of SN 2011dh a multi-national science team, including Morgan Fraser (Queens University Belfast, UK) triggered their Gemini Target of Opportunity (ToO) program to obtain high-resolution images with the near-infrared camera NIRI at the Gemini North telescope in Hawai‘i. However, snow and poor weather on Mauna Kea (where Gemini North is located) kept the telescope closed for a few nights, delaying the observations.



When observations were again possible, NIRI was successfully used with the adaptive optics system Altair to correct for the blurring effect of the Earth's atmosphere (known as 'seeing'), allowing the team to obtain an image with a resolution matching that of the Hubble Space Telescope. This comparable high resolution was always an intentional part of the plan: the program was designed to target supernovae that happened to occur in galaxies that had already been observed with the Advanced Camera for Surveys (ACS) on board the Hubble Space Telescope (HST).



As Fraser describes, “By carefully aligning the image of the supernova, to the pre-explosion HST images, we were able to identify a bright yellow supergiant as coincident with the supernova location in pre-explosion images.” The progenitor candidate has a temperature of about 6000K (which is comparable to that of the Sun), but was 13 times the mass of the Sun at the start of its life, and 100,000 times more luminous when it exploded.



The fact that the progenitor candidate identified is a yellow supergiant poses a challenge for current stellar evolutionary models. Over the last three years, there have been several claimed detections of yellow supergiant progenitors for other supernovae (for SN 2008cn and SN 2009kr). However, in both of these cases, the progenitors were considerably more distant and were detected at two wavelengths, so misidentification is possible. SN 2011dh is considerably closer than either of these supernovae, and the progenitor was detected at multiple wavelengths from the ultra-violet to the near-infrared, so the identification is more secure.



Several theories have been proposed to explain the yellow color of these progenitors, including dust, blended stars due to the poor resolution of some images, or the presence of a binary companion. The team is continuing to observe SN 2011dh, and this ongoing work will shed further light on the properties of the supernova and the variety of ways in which a massive star can end its life.



Prof. Stephen Smartt of Queens University Belfast and a collaborator adds, "This supernova has stimulated great interest and many observers are monitoring it in detail before it disappears behind the Sun in a few weeks time. Already there is debate about whether or not the yellow-supergiant could actually be a companion to the supernova progenitor. That's plausible, but the resolution of the debate will need much more data analysis and perhaps waiting to see if the star has disappeared."



The current work will appear in The Astrophysical Journal Letters, in a paper led by Justyn Maund (Dark Cosmology Centre of the Niels Bohr Institute, University of Copenhagen, Denmark). A preprint is now available.



More aboutA Yellow Supergiant Progenitor of a Massive Star Supernova in M51