Showing posts with label SN 2005cz. Show all posts
Showing posts with label SN 2005cz. Show all posts

Thursday, August 13, 2015

NASA's Hubble Finds Supernovae in 'Wrong Place at Wrong Time' Release Image

 Host Galaxies of Calcium-Rich Supernovae
Credit: NASA, ESA, and R. Foley (University of Illinois)

Scenario for Homeless Supernovae (Artist's Illustration)
Credit: NASA, ESA, and P. Jeffries and A. Feild (STScI)

This illustration offers a plausible scenario for how vagabond stars exploded as supernovae outside the cozy confines of galaxies.
1) A pair of black holes comes together during a galaxy merger, dragging with them up to a million stars each.
2) A double-star system wanders too close to the two black holes.
3) The black holes then gravitationally catapult the stars out of the galaxy. At the same time, the stars are brought closer together.
4) After getting booted out of the galaxy, the binary stars move even closer together as orbital energy is carried away from the duo in the form of gravitational waves.
5) Eventually, the stars get close enough that one of them is ripped apart by tidal forces.
6) As material from the dead star is quickly dumped onto the surviving star, a supernova occurs.


Scientists have been fascinated by a series of unusual exploding stars-outcasts beyond the typical cozy confines of their galaxies. A new analysis of 13 supernovae — including archived data from NASA's Hubble Space Telescope — is helping astronomers explain how some young stars exploded sooner than expected, hurling them to a lonely place far from their host galaxies.

It's a complicated mystery of double-star systems, merging galaxies, and twin black holes that began in 2000 when the first such supernova was discovered, according to study leader Ryan Foley, University of Illinois at Urbana-Champaign. "This story has taken lots of twists and turns, and I was surprised every step of the way," he said. "We knew these stars had to be far from the source of their explosion as supernovae and wanted to find out how they arrived at their current homes."

Foley thought that the doomed stars had somehow migrated to their final resting spots. To prove his idea, he studied data from the Lick Observatory in California and the W. M. Keck Observatory and the Subaru Telescope, both in Hawaii, to determine how fast the stars were traveling. To his surprise, he discovered that the doomed stars were zipping along at about the same speed as stars that have been tossed out of our Milky Way galaxy by its central supermassive black hole, at more than 5 million miles (7 million kilometers) an hour. The astronomer then turned his attention to the aging galaxies in the area of the speeding supernovae. Studying Hubble archival images, he confirmed that many are massive elliptical galaxies that were merging or had recently merged with other galaxies. The lanes are the shredded remnants of a cannibalized galaxy. Other observations provided circumstantial evidence for such encounters, showing that the cores of many of these galaxies had active supermassive black holes fueled by the collision. Many of the galaxies also reside in dense environments at the heart of galaxy clusters, a prime area for mergers. The telltale clue was strong dust lanes piercing through the centers of several of them.

The location of the supernovae in relation to ancient galaxies indicates that the original stars must have been old, too, Foley reasoned. And if the stars were old, then they must have had companions with them that provided enough material to trigger a supernova blast.

How does a double-star system escape the boundaries of a galaxy?

Foley hypothesizes that a pair of supermassive black holes in the merging galaxies can provide the gravitational slingshot to rocket the binary stars into intergalactic space. Hubble observations reveal that nearly every galaxy has a massive black hole at its center. According to Foley's scenario, after two galaxies merge, their black holes migrate to the center of the new galaxy, each with a trailing a cluster of stars. As the black holes dance around each other, slowly getting closer, one of the binary stars in the black holes' entourage may wander too close to the other black hole. Many of these stars will be flung far away, and those ejected stars in surviving binary systems will orbit even closer after the encounter, which speeds up the merger.

"With a single black hole, occasionally a star will wander too close to it and have an extreme interaction," Foley said. "With two black holes, there are two reservoirs of stars being dragged close to another black hole. This dramatically increases the likelihood that a star is ejected." While the black hole at the center of the Milky Way may eject about one star a century, a binary supermassive black hole may kick out 100 stars a year.

After getting booted out of the galaxy, the binary stars move closer together as their orbits continue to accelerate, which speeds up the binary stars' aging process. The binary stars are likely both white dwarfs, which are the burned out relics of stars. Eventually, the white dwarfs get close enough that one is ripped apart by tidal forces. As material from the dead star is quickly dumped onto the surviving star, an explosion occurs, causing the supernova.

The time it takes for one of these ejected stars to explode is relatively short, about 50 million years. Normally, these kinds of binary stars take a long time to merge, probably much longer than the age of the universe, which is more than 13 billion years.

"The interaction with the black holes shortens that fuse," Foley explained.

While scientists think they have found what causes these outcast supernovae, some mysteries remain unsolved, such as why they are unusually weak. These supernovae produced more than five times as much calcium as other stellar explosions. Normally, supernova explosions have enough energy to create much heavier elements, such as iron and nickel, at the expense of producing the lighter calcium. However, for these atypical explosions, the fusion chain stops midway, leaving lots of calcium and very little iron.

"Everything points to a weak explosion," said Foley. "We know that these blasts have lower kinetic energy and less luminosity than typical supernovae. They also appear to have less ejected mass, whereas a more energetic explosion should completely unbind the star."

The results appear in the August 13 issue of the Monthly Notices of the Royal Astronomical Society.


Contact

Donna Weaver / Ray Villard
Space Telescope Science Institute, Baltimore, Maryland
410-338-4493 / 410-338-4514

dweaver@stsci.edu / villard@stsci.edu

Ryan Foley
University of Illinois at Urbana-Champaign, Urbana, Illinois
510-338-3364

rfoley@illinois.edu


 Source: HubbleSite
 

Friday, May 21, 2010

An Unusual Supernova May Be a Missing Link in Stellar Evolution Research

Figure 1: SN 2005cz taken by the Subaru telescope. The supernova is marked by an arrow. On top-right of a supernova is the elliptical host galaxy HGC4589. Copyright: NAOJ, Subaru telescope

Figure 2: A spectrum of SN 2005cz (red, taken by the Subaru telescope) as compared to other supernovae. Spectra of Type Ib supernovae in the late-phases (about half a year and thereafter) are characterized by a strong emission from oxygen (labeled as [OI]). SN 2005cz does not show this feature, while a calcium emission line ([Ca II]) is very strong. [from Nature]

The standard theory of stellar evolution tells us that a life of a star is determined when it is born – the mass at the birth is a main function. Stars whose initial masses are above 8 – 10 solar masses experience a violent death – at the end of their lives, their inner core should suffer from a gravitational collapse, which then leads to the gigantic explosion known as a supernova explosion. This phenomenon is believed to be the origin of "apparently new stars" ("supernovae") which suddenly appear on the night sky (note that there is another channel leading to a supernova explosion, a type Ia supernova, that is a thermonuclear explosion of a white dwarf. In this paper, we hereafter call the core-collapse supernova explosions from massive stars as supernovae). The number of stars in the Universe decreases as a function of their mass: Namely, there are more "less-massive" stars than "more-massive" stars. Therefore, it has been believed that stars that are about 10 solar masses at the birth are the largest population among stars that end their lives as supernovae.

However, a supernova from this lower boundary in the progenitor mass had not been identified. It seemed that all core-collapse supernovae for which the research group estimated the progenitor masses originated from stars whose initial masses were at least 12 solar masses – sometimes above 40 solar masses. The researchers wondered why they did not identify the explosion from the “lower-limit-mass” stars – Is there anything wrong in the theory of stellar evolution? If it is the case, it is a disaster for astronomy: In many fields of astronomy, it has been assumed that these stars are the predominant population of supernovae

The research group observed a peculiar type Ib supernova SN 2005cz, using several telescopes, including 8.2m Subaru Telescope of NAOJ. They found various puzzling properties of this supernova; (1) it showed up in an elliptical galaxy that usually lacks massive stars to become type Ib supernovae, (2) it was faint, reaching only 20% of typical luminosity of other type Ib supernovae, and (3) it faded very quickly. On top of these properties, a late-time spectrum taken by the Subaru telescope at about 200 days after the explosion was most striking. An emission line from oxygen which is the strongest in type Ib supernovae is nearly missing, while there is a very strong emission line from calcium. This property is indeed a unique feature expected for an explosion of a star with about 10 solar masses. The research group concluded that all the peculiarities that SN 2005cz showed can now be understood consistently by this scenario of the explosion of the "least-massive-star". Note: In the same volume, Perets et al., reported observations of SN 2005E which look similar to SN 2005cz in many aspects, and suggested that it is a new type of the explosion that is an explosion within the surface layer of a white-dwarf. Kawabata and collaborators on the other hand argued that the core-collapse explosion scenario is more likely at least for SN 2005cz. Further study is necessary to understand a possible link between these two supernovae.

"Our study has rescued the standard theory of stellar evolution," mentioned Koji Kawabata from Hiroshima University, continuing, "This supernova was faint and gone quickly. This is probably a main reason why we have not got this kind of supernovae before". "This type of supernovae should be intrinsically abundant in the Universe", mentioned Keiichi Maeda, an assistant professor at IPMU, "They are important as origins of various things which we see in the Universe today. For example, these stars are believed to be main contributors of some elements including carbon and nitrogen which are essential ingredient of the life on Earth." Another example includes the diffuse neutrino background in the Universe. IPMU researchers have been trying to detect a signature of past supernovae explosions by looking into the "sum" of neutrino emissions from multiple past supernovae. Supernovae of the type discovered by this research may well be a predominant population here.

Institute for the Physics and Mathematics of the Universe (IPMU)

A research group led by Koji Kawabata of Hiroshima University, Keiichi Maeda, Ken’ichi Nomoto, Masaomi Tanaka of IPMU and their collaborators published their result in Nature (2010 May 20 issue). In the paper, they reported observations of a peculiar type Ib supernova 2005cz, and concluded that this is a supernova whose progenitor mass at its birth was about 10 times the Sun. Such a star represents a boundary between stars that end their lives with the gigantic supernova explosion and those without explosions. Supernovae from stars that were originally about 10 solar mass should occupy a large fraction of supernova explosions taking place in the whole universe. However a supernova whose progenitor mass lies just above the boundary has not been identified. This is a reason why astronomers have been seeking for an explosion in this mass range. This study thus finally provides a solid confirmation on the stellar evolution theory. Having identified properties of the resulting supernova explosion, this study also serves as an important step forward to understand roles of supernovae in evolution of the universe.

Publication:Nature  2010 May 20 issue
Title:"A Massive Star Origin for An Unusual Helium-Rich Supernovae in An Elliptical Galaxy"
Authors:Koji Kawabata (Hiroshima Univ.), Keiichi Maeda (IPMU), Ken’ichi Nomoto (IPMU), Stefan Taubenberger (MPA), Masaomi Tanaka (IPMU), Jinsong Deng (NAOC), Elena Pian (Pisa), Takashi Hattori (NAOJ), Koichi Itagaki (Itagaki Obs.)



CONTACTS

For more details

Keiichi Maeda,

IPMU Assistant Professor

e-mail: keiichi.maeda@ipmu.jp


Ken'ichi Nomoto,

IPMU Professor, IPMU Principal Investigator

e-mail: nomoto@astron.s.u-tokyo.ac.jp


Media Contact

Fusae Miyazoe,

IPMU Press Officer

e-mail: press@ipmu.jp


REFERENCES