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Philips DesignLine TV is a seamless square pane of glass (video)

Philips DesignLine TV is a seamless square pane of glass (video)

Folks with an eye for unusual design likely had their interest piqued by Samsung's "Timeless Gallery" TV stand, but now a new Philips television is stepping into the living room limelight. Dubbed the Philips DesignLine, the rig hides an LCD display behind a seamless glass pane with a black to transparent gradient that supports itself by leaning against a wall. The TV operates at 1,400 Hz and packs a dual-core processor, WiFi and support for 3D (in 1080p, naturally) and MiraCast. In addition, the DesignLine boasts the firm's Ambilight tech on three sides, which beams out lights matching the color of what's displayed on screen. It'll be available in in 46- and 55-inch flavors in Europe and Russia by way of TP Vision during Q2, but there's no word on price or when it might travel overseas. Hit the jump to catch a video of it in action and watch its creators talk shop.

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Source: TP Vision

Source: http://www.engadget.com/2013/03/15/philips-designline-tv-square-pane-of-glass-video/

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Brain Scans Can Now Reveal Who You're Thinking About

For the first time, scientists have been able to use data from brain scans to identify who patients are thinking about. More »


Source: http://feeds.gawker.com/~r/gizmodo/full/~3/3bR4Ls-iqWg/brain-scans-can-now-reveal-who-youre-thinking-about

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US Will Beef Up West Coast Missile Defense System to Protect Against North Korea

Reports have surfaced that Secretary of Defense Chuck Hagel will announce an expansion of the United States' west coast missile defenses in response to a perceived threat from North Korea. More »


Source: http://feeds.gawker.com/~r/gizmodo/full/~3/7s5sMhtqIC0/us-will-beef-up-west-coast-missile-defense-system-to-protect-against-north-korea

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Why Are Demi Lovato's Hands Painted Black On 'Heart Attack' Set?

Photos from Lovato's video set show the singer in a white bathrobe and her hands dipped in black paint.
By Driadonna Roland, with reporting by Jocelyn Vena

Source: http://www.mtv.com/news/articles/1703708/demi-lovato-heart-attack-video-set.jhtml

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New era: Welker joins Broncos

mike-wallace3Getty Images

Often, when only general details emerge regarding a big contract, the truth ends up undercutting the perception created by the deal.

So that?s why we were skeptical about the Mike Wallace contract, which was described only as being worth $60 million over five years, with $30 million guaranteed.

Here are the full details, per a source with knowledge of the contract.

1.? $11 million signing bonus.

2.? $1 million base salary in 2013, fully guaranteed.

3.? $15 million base salary in 2014, fully guaranteed.

4.? $9.85 million base salary in 2015, $3 million of which is guaranteed for injury at signing and fully guaranteed next March.

5.? $11.45 million base salary in 2016.

6.? $11.45 million base salary in 2017.

7.? $50,000 workout bonus, each year.

The cap numbers are $3.25 million in 2013, $17.25 million in 2014, $12.1 million in 2015, $13.7 million in 2016, and $13.7 million in 2017.

It adds up to a whopping $27 million in fully guaranteed money.? As a practical matter, it?s a three-year, $37 million deal, with a year-to-year option on the remainder.

By 2016, the question will become whether Wallace?s performance justifies an investment of $11.45 million in cash ? especially since cutting him would cost only $4.4 million against the cap.

The low cap number in 2013 gives Miami plenty of additional room to maneuver as the team attempts to improve its performance and generate excitement in South Florida.

Source: http://profootballtalk.nbcsports.com/2013/03/13/report-welker-seriously-considering-leaving-patriots/related/

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Surprising control over photoelectrons from a topological insulator

Mar. 13, 2013 ? Plain-looking but inherently strange crystalline materials called 3D topological insulators (TIs) are all the rage in materials science. Even at room temperature, a single chunk of TI is a good insulator in the bulk, yet behaves like a metal on its surface.

Researchers find TIs exciting partly because the electrons that flow swiftly across their surfaces are "spin polarized": the electron's spin is locked to its momentum, perpendicular to the direction of travel. These interesting electronic states promise many uses -- some exotic, like observing never-before-seen fundamental particles, but many practical, including building more versatile and efficient high-tech gadgets, or, further into the future, platforms for quantum computing.

A team of researchers from the U.S. Department of Energy's Lawrence Berkeley National Laboratory (Berkeley Lab) and the University of California at Berkeley has just widened the vista of possibilities with an unexpected discovery about TIs: when hit with a laser beam, the spin polarization of the electrons they emit (in a process called photoemission) can be completely controlled in three dimensions, simply by tuning the polarization of the incident light.

"The first time I saw this it was a shock; it was such a large effect and was counter to what most researchers had assumed about photoemission from topological insulators, or any other material," says Chris Jozwiak of Berkeley Lab's Advanced Light Source (ALS), who worked on the experiment. "Being able to control the interaction of polarized light and photoelectron spin opens a playground of possibilities."

The Berkeley Lab-UC Berkeley team was led by Alessandra Lanzara of Berkeley Lab's Materials Sciences Division (MSD) and UC Berkeley's Department of Physics, working in collaboration with Jozwiak and Zahid Hussain of the ALS; Robert Birgeneau, Dung-Hai Lee, and Steve Louie of MSD and UC Berkeley; and Cheol-Hwan Park of UC Berkeley and Seoul National University. They and their colleagues report their findings in Nature Physics.

Strange electronic states and how to measure them

In diagrams of what physicists call momentum space, a TI's electronic states look eerily like the same kinds of diagrams for graphene, the single sheet of carbon atoms that, before topological insulators came along, was the hottest topic in the materials science world.

In energy-momentum diagrams of graphene and TIs, the conduction bands (where energetic electrons move freely) and valence bands (where lower-energy electrons are confined to atoms) don't overlap as they do in metals, nor is there an energy gap between the bands, as in insulators and semiconductors. Instead the "bands" appear as cones that meet at a point, called the Dirac point, across which energy varies continuously.

The experimental technique that directly maps these states is ARPES, angle-resolved photoemission spectroscopy. When energetic photons from a synchrotron light source or laser strike a material, it emits electrons whose own energy and momentum are determined by the material's distribution of electronic states. Steered by the spectrometer onto a detector, these photoelectrons provide a picture of the momentum-space diagram of the material's electronic structure.

Similar as their Dirac-cone diagrams may appear, the electronic states on the surface of TIs and in graphene are fundamentally different: those in graphene are not spin polarized, while those of TIs are completely spin polarized, and in a peculiar way.

A slice through the Dirac-cone diagram produces a circular contour. In TIs, spin orientation changes continuously around the circle, from up to down and back again, and the locked-in spin of surface electrons is determined by where they lie on the circle. Scientists call this relation of momentum and spin the "helical spin texture" of a TI's surface electrons. (Electron spin isn't like that of a spinning top, however; it's a quantum number representing an intrinsic amount of angular momentum.)

Directly measuring the electrons' spin as well as their energy and momentum requires an addition to ARPES instrumentation. Spin polarization is hard to detect and in the past has been established by firing high-energy electrons at gold foil and counting which way a few of them bounce; collecting the data takes a long time.

Jozwiak, Lanzara, and Hussain jointly led the development of a precision detector that could measure the spin of low-energy photoelectrons by measuring how they scatter from a magnetic surface. Called a spin time-of-flight analyzer, the device is many times more efficient at data collection.

Says Hussain, "It's the kind of project that could only be done at a place like Berkeley Lab, where tight collaboration for a wide range of capabilities is possible."

The new instrument was first used at the ALS to study the well-known topological insulator bismuth selenide. While the results confirmed that bismuth selenide's helical spin texture persists even at room temperature, they raised a perplexing question.

Lanzara says, "In an ARPES experiment, it's usually assumed that the spin polarization of detected photoelectrons accurately reports the spin polarization of electrons within the material." She explains that "this assumption is frequently made when confirming the helical spin texture of a TI's surface electrons. But in our spin-ARPES experiments, we found significant deviations between the spin polarizations of the surface electrons versus the photoelectrons. We knew we had to look further."

Flipping photoelectron spins

Probing the TI surface electrons didn't require the high photon energy of a synchrotron beam, so the new study was primarily done in a laboratory with a laser that could produce intense ultraviolet light capable of stimulating photoemission, and whose polarization was readily manipulated. The experiment used high-quality samples of bismuth selenide from Birgeneau's MSD and UC Berkeley labs.

In the first experiments, the incident light was p?polarized, which means the electric part of the light wave was parallel to a plane that was perpendicular to the TI surface and oriented according to the path of the emitted photoelectrons. Since studies of topological insulators typically use p?polarized light in this geometry, sure enough, the spin-ARPES measurements showed the photoelectrons were indeed spin polarized in directions consistent with the expected spin texture of the surface electrons.

"After we'd measured p?polarization, we switched to an s?polarized laser beam," Jozwiak says. "It only took a few minutes to collect the data." (S?polarization means the electric part of the light wave is perpendicular to the same imaginary plane -- perpendicular in German being senkrecht.)

Three minutes after he started the run, Jozwiak got a jolt. "The experiment was completely the same, except for the light polarization, but now the photoelectrons were spin polarized in the reverse direction -- the opposite of what you'd expect." His first assumption was "I must have done something wrong."

Repeated careful experiments with a range of laser polarizations showed, however, that the spin polarization of the photons in the laser beam controlled the polarization of the emitted photoelectrons. When the laser polarization was smoothly varied -- and even when it was circularly polarized right or left -- the photoelectron spin polarization followed suit.

Why had no results counter to the expected surface textures been reported before? Probably because the most common kind of spin-ARPES experiment makes a few measurements in a typical geometry using p-polarized light. With other arrangements, however, photoelectron spin polarization departs markedly from expectations.

The team's theory collaborators, Park, Louie, and Lee, helped explain the unusual theoretical results when they predicted that just such differences between photoelectron and intrinsic textures should occur. There are also suggestions that the simple picture of spin texture in topological insulators is more complex than has been assumed. Says Lanzara, "It's a great motivation to keep digging."

The ability to hit a topological insulator with a tuned laser and excite polarization-tailored electrons has great potential for the field of spintronics -- electronics that exploit spin as well as charge. Devices that optically control electron distribution and flow would constitute a significant advance.

Optical control of TI photoemission has more immediate practical possibilities as well. Bismuth selenide could provide just the right kind of photocathode source for experimental techniques that require electron beams whose spin polarization can be exquisitely and conveniently controlled.

DOE's Office of Science supports the ALS and supported this research.

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The above story is reprinted from materials provided by DOE/Lawrence Berkeley National Laboratory.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.


Journal References:

  1. Chris Jozwiak, Cheol-Hwan Park, Kenneth Gotlieb, Choongyu Hwang, Dung-Hai Lee, Steven G. Louie, Jonathan D. Denlinger, Costel R. Rotundu, Robert J. Birgeneau, Zahid Hussain, Alessandra Lanzara. Photoelectron spin-flipping and texture manipulation in a topological insulator. Nature Physics, 2013; DOI: 10.1038/nphys2572
  2. C. Jozwiak, Y L. Chen, A V. Fedorov, J G. Analytis, C R. Rotundu, A K. Schmid, J D. Denlinger, Y.-D. Chuang, D.-H. Lee, I R. Fisher, R J. Birgeneau, Z.-X. Shen, Z. Hussain, A. Lanzara. Widespread spin polarization effects in photoemission from topological insulators. Physical Review B, 2011; 84 (16) DOI: 10.1103/PhysRevB.84.165113

Note: If no author is given, the source is cited instead.

Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.

Source: http://feeds.sciencedaily.com/~r/sciencedaily/top_news/top_technology/~3/N6BkXkhZ5ZI/130313112437.htm

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Children who avoid scary situations likelier to have anxiety

Wednesday, March 13, 2013

Children who avoid situations they find scary are likely to have anxiety a Mayo Clinic study of more than 800 children ages 7 to 18 found. The study published this month in Behavior Therapy presents a new method of measuring avoidance behavior in young children.

The researchers developed two eight-question surveys: the Children's Avoidance Measure Parent Report and the Children's Avoidance Measure Self Report. The questionnaires ask details about children's avoidance tendencies, for instance, in addressing parents, "When your child is scared or worried about something, does he or she ask to do it later?" It also asks children to describe their passive avoidance habits. For example: "When I feel scared or worried about something, I try not to go near it."

One of the most surprising findings was that measuring avoidance could also predict children's development of anxiety. Children who participated in the study showed stable anxiety scores after a year had passed, but those who described avoidance behaviors at the onset tended to be more anxious a year later.

"This new approach may enable us to identify kids who are at risk for an anxiety disorder," says lead author Stephen Whiteside, Ph.D., a pediatric psychologist with the Mayo Clinic Children's Center. "And further, because cognitive behavior therapy focuses on decreasing avoidance behaviors, our approach may also provide a means to evaluate whether current treatment strategies work they we think they do."

In 25 anxious children surveyed following cognitive behavior therapy that slowly exposed children to the situations that caused fear, the avoidance scores from surveys of their parents declined by half. This likely indicates that part of the reason they're getting better is that they're no longer avoiding things, Dr. Whiteside says.

"Even after controlling for their baseline anxiety, those who avoided had more anxiety than kids who didn't avoid," Dr. Whiteside says. "That was consistent with the model of how anxiety disorders develop. Kids who avoid fearful situations don't have the opportunity to face their fears and don't learn that their fears are manageable."

Most children experience fears of one kind or another, but for some children those fears become heightened as part of an anxiety disorder. When children begin to avoid scary situations, anxiety disorders can become particularly disabling, preventing participation in everyday activities. Even though several methods exist to gauge children's fearful thinking and symptoms like feeling nervous, clinicians have had few tools until now to measure avoidance behaviors.

Dr. Whiteside is the developer of the Mayo Clinic Anxiety Coach, an iPhone app that helps individuals learn about anxiety, gauge and manage their symptoms, and make lists of activities to help them face their fears. The study was funded by Mayo Clinic Department of Psychiatry and Psychology.

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Mayo Clinic: http://www.mayoclinic.org/news

Thanks to Mayo Clinic for this article.

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Source: http://www.labspaces.net/127265/Children_who_avoid_scary_situations_likelier_to_have_anxiety

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