One step closer to rollable, foldable electronic devices


One step closer to rollable, foldable electronic devices

The next generation of electronic displays – e-Readers, smartphones and tablets – is closer thanks to research out today from the University of Cincinnati.Advances that will eventually bring foldable/rollable e-devices as well as no pixel borders are experimentally verified and proven to work in concept at UC’s Novel Devices Laboratory. That research is published this week in the journal Nature Communications.The e-Sheet, a virtually indestructible e-device, will be as thin and as rollable as a rubber mat. UC research is bringing closer the e-Sheet, shown here in a photo illustration. e-Devices will one day be as thin and as rollable as a rubber mat.The UC paper, “Bright e-Paper by Transport of Ink through a White Electrofluidic Imaging Film” is authored by College of Engineering and Applied Science doctoral students Matthew Hagedon, Shu Yang, and Ann Russell, as well as Jason Heikenfeld, associate professor of electronic and computing systems. UC worked on this research with partner: start-up company Gamma Dynamics


.Matthew Hagedon with electrofluidic imaging film
Matthew Hagedon with electrofluidic imaging film. The white, plastic film, ten times thinner than a sheet of paper, is in a rigid frame for support during lamination into a display. The goal is a large roll of film that can be laminated onto electronics.
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Measurements Hint Why the Universe Is Dominated by Matter, Not Anti-Matter


Measurements Hint Why the Universe Is Dominated by Matter, Not Anti-Matter

Dec. 26, 2012 — A collaboration with major participation by physicists at the University of Wisconsin-Madison has made a precise measurement of elusive, nearly massless particles, and obtained a crucial hint as to why the universe is dominated by matter, not by its close relative, anti-matter.
A pool holding four anti-neutrino detectors begins filling with ultra-pure water in September, 2012 at the Daya Bay Neutrino experiment. The experiment, just recognized by Science magazine as a breakthrough of the year, is helping to explain why the universe contains virtually no anti-matter. University of Wisconsin-Madison physicist Karsten Heeger and Physical Sciences Laboratory engineer Jeff Cherwinka both played major roles at the experiment. (Credit: Roy Kaltschmidt, Lawrence Berkeley National Laboratory)
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Metallic Glass For Bone Surgery


Metallic Glass For Bone Surgery

Sep. 29, 2009 — It is possible that broken bones will in the near future be fixed using metallic glass. Materials researchers at ETH Zurich have developed an alloy that could herald a new generation of biodegradable bone implants.
Arc melter in which a plasma of up to 3000°C is produced between a tungsten tip (center) and a water-cooled copper plate. (Credit: ETH Zurich/LMPT).
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From Super to Ultra: Just How Big Can Black Holes Get?


From Super to Ultra: Just How Big Can Black Holes Get?

Dec. 18, 2012 — Some of the biggest black holes in the Universe may actually be even bigger than previously thought, according to a study using data from NASA's Chandra X-ray Observatory.
The black hole at the center of this galaxy is part of a survey of 18 of the biggest known black holes in the universe. This large elliptical galaxy is in the center of the galaxy cluster PKS 0745-19, which is shown in this composite image containing X-rays from Chandra (purple) and optical data from Hubble (yellow). Researchers found that some of the black holes in the survey may be about ten times more massive than previously thought. This includes ten that could weigh between 10 and 40 billion times the mass of the sun, making them "ultramassive" black holes. (Credit: X-ray: NASA/CXC/Stanford/Hlavacek-Larrondo, J. et al; Optical: NASA/STScI; Radio: NSF/NRAO/VLA)
Astronomers have long known about the class of the largest black holes, which they call "supermassive" black holes. Typically, these black holes have masses ranging between a few million and a few billion times that of our sun.
This new analysis of the brightest galaxies in a sample of 18 galaxy clusters suggests that the masses of at least ten of the supermassive black holes in these galaxies are ultramassive, in that they weigh between 10 and 40 billion times the mass of the sun. Astronomers refer to black holes of this size as "ultramassive" black holes and only know of a few confirmed examples.
"Our results show that there may be many more ultramassive black holes in the universe than previously thought," said study leader Julie Hlavacek-Larrondo of Stanford University and formerly of Cambridge University in the UK.
The researchers estimated the masses of the black holes in the sample by using an established relationship between masses of black holes, and the amount of X-rays and radio waves they generate. This relationship, called the fundamental plane of black hole activity, fits the data on black holes with masses ranging from 10 solar masses to a billion solar masses.
The black hole masses derived by Hlavacek-Larrondo and her colleagues were about ten times larger than those derived from standard relationships between black hole mass and the properties of their host galaxy. One of these relationships involves a correlation between the black hole mass and the infrared luminosity of the central region, or bulge, of the galaxy.
"These results may mean we don't really understand how the very biggest black holes coexist with their host galaxies," said co-author Andrew Fabian of Cambridge University. "It looks like the behavior of these huge black holes has to differ from that of their less massive cousins in an important way."
All of the potential ultramassive black holes found in this study lie in galaxies at the centers of massive galaxy clusters containing huge amounts of hot gas. Outbursts powered by the central black holes are needed to prevent this hot gas from cooling and forming enormous numbers of stars. To power the outbursts, the black holes must swallow large amounts of mass in the form of hot gas. Because the largest black holes can swallow the most mass and power the biggest outbursts, ultramassive black holes had already been predicted to exist to explain some of the most powerful outbursts seen. The extreme environment experienced by these galaxies may explain why the standard relations for estimating black hole masses do not apply.
These results can only be confirmed by making detailed mass estimates of the black holes in this sample, which is by modeling the motion of stars or gas in the vicinity of the black holes. Such a study has been carried out for the black hole in the center of the galaxy M87, the central galaxy in the Virgo Cluster, the nearest galaxy cluster to Earth. The mass of M87's black hole, as estimated from the motion of the stars, is significantly higher than the estimate using infrared data, approximately matching the correction in black hole mass estimated by the authors of the Chandra study.
"Our next step is to measure the mass of these monster black holes in a similar way to M87, and confirm their existence. I wouldn't be surprised if we end up finding the biggest black holes in the Universe," said Hlavacek-Larrondo. "If our results are confirmed, they will have important ramifications for understanding the formation and evolution of black holes across cosmic time."
In addition to the X-rays from Chandra, the new study also uses radio data from the NSF's Karl G. Jansky Very Large Array (JVLA) and the Australia Telescope Compact Array (ATCA) and infrared data from the 2 Micron All-Sky Survey (2MASS).
These results were published in the July 2012 issue of The Monthly Notices of the Royal Astronomical Society.
NASA's Marshall Space Flight Center in Huntsville, Ala., manages the Chandra program for NASA's Science Mission Directorate in Washington. The Smithsonian Astrophysical Observatory controls Chandra's science and flight operations from Cambridge, Mass.
source:sciencedaily. 
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