Showing posts with label Physics. Show all posts
Showing posts with label Physics. Show all posts

Sunday, May 23, 2010

Teleportation over 10 miles: the ultimate secure line [Entanglement]

Teleportation over 10 miles: the ultimate secure line
We picked our jaws off the floor when we heard about tiny particles being teleported just a foot or two away, but now scientists have topped that by 10 miles. This tech won't be transporting Kirk and his Away Team to the surface of some distant planet anytime soon, but it has seriously practical applications to communications.


Quantum physics says photons can, in some ways, occupy two places at once. When one photon gets entangled with another, whatever happens to one of those particles also happens to another, even if it's TEN frickin' miles away! Now THAT's a fast connection.


The good news: The researchers were able to send this info with 89% fidelity. The bad? Information transmitted in this way will be hard to encrypt. But they're working on that. There's good reason to work on it; if they can get this right, the communication would be completely secure. Since there's no physical medium for the transmission to travel through — not even spacetime itself ૼ it would be physically impossible to jam or intercept.


[DVICE via Ars Technica via Gizmodo]

Tuesday, April 20, 2010

Scientists Measure Atomic Nudge [Physics]

By pushing a cluster of just 60 ions with a tiny electric field, researchers have measured the most minuscule force ever.

The result, measuring mere yoctonewtons (10^-24 newtons), beats previous record lows by several orders of magnitude. The group behind the measurements, based at the National Institute of Standards and Technology in Boulder, Colorado, hopes that the technique can eventually lead to new tools for measuring the minuscule features of materials' surfaces.

Tiny force measurements are crucial for imaging atomic surfaces and detecting nuclear spins, but they are difficult to make because of the tiny dimensions involved.

To date, researchers have successfully measured around an attonewton (10^-18 N) of force by giving small pushes to microscopic paddles or wires and then watching them vibrate. These systems work well, but are limited by factors such as their relatively large size.

The new technique eschews the paddle-type systems in favor of just 60 beryllium-9 ions. The group flattened the ions into a tiny "pancake" and suspended this in mid-air using magnetic fields. They then fired a laser at the ions, lead author Michael Biercuk, now at the University of Sydney in Australia, writes in a paper on the physics preprint server arXiv.org.

By carefully tuning the laser, they extracted energy from the atomic pancake until it reached a temperature of just 0.5 millikelvins.

The team then nudged their pancake with a small electric field. The nudge shook the ions and caused a discernible change in the reflected laser light. On the basis of the size of the change, the team estimates that it has measured a force as small as 174 yoctonewtons--about a thousand times smaller than previous measurements.

Tiny force shunts tiny mass"What makes it work is that the system is so light," says Chris Monroe, a physicist at the University of Maryland in College Park who was not involved in the research.

Newton's second law of motion states that force is equal to the product of mass and acceleration, so a tiny mass is sensitive to a tiny force. Weighing in at around 0.1 yoctokilograms, 60 beryllium-9 ions make one of the lightest force probes possible.

There is nothing particularly new about the technique, Monroe adds. Clusters of ultracold atoms are already the focus of many studies in their own right. The team's insight was that the ultracold ions would make for supersensitive force detectors. In their paper, the researchers say that even more sensitive detections might be possible with fewer ions.

Monroe says that he agrees in principle, but notes that as the number of ions shrinks, so will the laser signal crucial to the measurement. The team behind the work says that a single ion could detect an even smaller force. True enough, says Monroe, assuming the ion itself can be accurately measured.

Ultimately, the team hopes that beryllium ions could be used as tiny force detectors in all sorts of measurement. "In principle, you could try to use this for fundamental force measurements," says Konrad Lehnert, a researcher at JILA in Boulder, who held the previous measurement record for work using a vibrating wire. In particular, it might be possible to test gravity and quantum effects at ultra-short scales.

But Monroe cautions that the technique should not be oversold. The ions must be kept isolated in a vacuum chamber in order to work, he notes, making actual applications tricky.

"It's not going to be used to find oil tomorrow or anything," he says. But he adds that it may well be possible to develop the atomic pancakes into something more practical.

[By Geoff Brumfiel at Scientific American]

Thursday, April 15, 2010

Black Holes May All Contain Other Universes [The Universe]

Black Holes May All Contain Other Universes
It's mind blowin' time! According to a new theory, every black hole contains a smaller alternate universe. And our universe might just exist inside a black hole in a much larger universe. Ah-whaaaaaa?

According to Indiana University physicist Nikodem Poplawski, the matter that black holes absorb don't condense into singularities. Instead, they pop out the other side and become the building blocks for whole other universes in another reality.

This would explain what happened before our Big Bang: it popped out of a black hole from another, much larger universe. Everything came out of a 'white hole,' if you will.
Gamma ray bursts occur at the fringes of the known universe. They appear to be associated with supernovae, or star explosions, in faraway galaxies, but their exact sources are a mystery. (Related: 'Gamma-Ray Burst Caused Mass Extinction?')

Poplawski proposes that the bursts may be discharges of matter from alternate universes. The matter, he says, might be escaping into our universe through supermassive black holes-wormholes-at the hearts of those galaxies, though it's not clear how that would be possible.

'It's kind of a crazy idea, but who knows?' he said.
Yeah, kind of!

[Gizmodo via National Geographic via The Daily What]

Wednesday, April 7, 2010

The Most Magnetic Material Yet [Magnets]

The Most Magnetic Material Yet
Iron cobalt was the most magnetic material on Earth until physicists created what's in this man's hands. It's an iron and nitrogen compound which is 18 percent more magnetic and potentially disproves theories about how magnetic a material can be.

Jianping Wang, a physicist at the University of Minnesota, created the compound, but he's actually not the first to do so:
In 1996, researchers from the Central Research Laboratory of Hitachi in Japan made the same iron and nitrogen compound. Their research also showed that the material exceeded limitations set by traditional theories. However, scientists were unable to duplicate their experiments.

Apparently Wang has 'taken special care to allow other scientists to duplicate his experimental setup' because of these failed attempts of the past. It's a shame that his experiment doesn't count as proof of the original compound's creation for some reason though.

[Gizmodo via MN Daily via Pop Sci]

Sunday, March 21, 2010

Quantum Mechanics Observed by the Human Eye [Quantum Mechanics]

Quantum Mechanics Observed by the Human Eye
Remember when, just the other day, we were talking about the future of storage, and how quantum mechanics is on the pipe dream, it's totally magic list for now? Yeah. Me too. Thing is, shit just got real:
Real, and more importantly observable. Observable is important because until this week when one talked about quantum mechanics they were either spouting a lot of unproven theory about things way too tiny to be measured or they were Lt. Cmdr. Geordi LaForge on the engineering deck of the Enterprise D.

No longer!
A team of scientists has succeeded in putting an object large enough to be visible to the naked eye into a mixed quantum state of moving and not moving.
Bwah? It reads like science fiction, to me, but apparently science guy Andrew Cleland and his team, at the University of California, Santa Barbara, were able to cool a tiny 30-micrometer metal paddle to the point where it reached a quantum mechanical ground state. Or, as my limited understand calls it, the place where nature starts to get all freaky deaky.

After the cooling process was complete, Cleland and company were able to 'simultaneously set the paddle moving while leaving it standing still.' Again: The metal paddle was both vibrating and not vibrating at the same time, and in a way that was observable by the naked eye.

Are you freaking out yet? Because I know a few cats in dark boxes that are right now.

[Gizmodo via Nature via Kottke]

Friday, September 11, 2009

Air Bubble Inside a Water Bubble

Bubbles of water and air, and more in space where there is zero gravity. Absolutely amazing.