Showing posts with label Quantum. Show all posts
Showing posts with label Quantum. Show all posts

Friday, March 27, 2015

Quantum Entaglement Light Photon Created to Contain Thousands of Atoms for Advanced Atomic Time Keeping

Physicists from MIT and the University of Belgrade have developed a new technique that can successfully entangle 3,000 atoms using only a single photon. The results, published today in the journal Nature, represent the largest number of particles that have ever been mutually entangled experimentally.

The researchers say the technique provides a realistic method to generate large ensembles of entangled atoms, which are key components for realizing more-precise atomic clocks.
“You can make the argument that a single photon cannot possibly change the state of 3,000 atoms, but this one photon does — it builds up correlations that you didn’t have before,” says Vladan Vuletic, the Lester Wolfe Professor in MIT’s Department of Physics, and the paper’s senior author. “We have basically opened up a new class of entangled states we can make, but there are many more new classes to be explored.”

Vuletic’s co-authors on the paper are Robert McConnell, Hao Zhang, and Jiazhong Hu of MIT, as well as Senka Cuk of the University of Belgrade.

Atomic entanglement and timekeeping

Entanglement is a curious phenomenon: As the theory goes, two or more particles may be correlated in such a way that any change to one will simultaneously change the other, no matter how far apart they may be. For instance, if one atom in an entangled pair were somehow made to spin clockwise, the other atom would instantly be known to spin counterclockwise, even though the two may be physically separated by thousands of miles.

The phenomenon of entanglement, which physicist Albert Einstein once famously dismissed as “spooky action at a distance,” is described not by the laws of classical physics, but by quantum mechanics, which explains the interactions of particles at the nanoscale. At such minuscule scales, particles such as atoms are known to behave differently from matter at the macroscale.
Scientists have been searching for ways to entangle not just pairs, but large numbers of atoms; such ensembles could be the basis for powerful quantum computers and more-precise atomic clocks. The latter is a motivation for Vuletic’s group.

Today’s best atomic clocks are based on the natural oscillations within a cloud of trapped atoms. As the atoms oscillate, they act as a pendulum, keeping steady time. A laser beam within the clock, directed through the cloud of atoms, can detect the atoms’ vibrations, which ultimately determine the length of a single second.

“Today’s clocks are really amazing,” Vuletic says. “They would be less than a minute off if they ran since the Big Bang — that’s the stability of the best clocks that exist today. We’re hoping to get even further.”

The accuracy of atomic clocks improves as more and more atoms oscillate in a cloud. Conventional atomic clocks’ precision is proportional to the square root of the number of atoms: For example, a clock with nine times more atoms would only be three times as accurate. If these same atoms were entangled, a clock’s precision could be directly proportional to the number of atoms — in this case, nine times as accurate. The larger the number of entangled particles, then, the better an atomic clock’s timekeeping.

Picking up quantum noise

Scientists have so far been able to entangle large groups of atoms, although most attempts have only generated entanglement between pairs in a group. Only one team has successfully entangled about 100 atoms — the largest mutual entanglement to date, and only a small fraction of the whole atomic ensemble.

Now Vuletic and his colleagues have successfully created a mutual entanglement among 3,000 atoms, virtually all the atoms in the ensemble, using very weak laser light — down to pulses containing a single photon. The weaker the light, the better, Vuletic says, as it is less likely to disrupt the cloud. “The system remains in a relatively clean quantum state,” he says.

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Tuesday, January 13, 2015

Unbreakable Quantum Encryption Entanglement Could Change World of Data Storage According to Latest Research

""There’s a current theory, backed by numerous tests, suggesting the notion of storing data in quantum entanglement is something highly feasible, and researchers at the Australian National University (ANU) are furthering its potential.
In the past, storing data this way only lasted for a short amount of time before the quantum entanglement failed; normally in a matter of milliseconds. But now, the aforementioned Australian research team has found a way to multiply the storage time and hold data for 100 times longer.
Lead author Manjin Zhong said:
We believe it will soon be possible to distribute quantum information between any two points on the globe. Quantum states are very fragile and normally collapse in milliseconds. Our long storage times have the potential to revolutionize the transmission of quantum information.”

According to their research, they can now store data through quantum computing for up to six hours at a time. The coherence time observed is long enough that nuclear spins travelling at 9 kilometres per hour in a crystal would have a lower decoherence with distance than light in an optical fibre. This enables some very early approaches to entanglement distribution (for example for quantum cryptography) to be revisited, in particular those in which the spins are transported rather than the light.
“Our storage times are now so long that it means people need to rethink what is the best way to distribute quantum data. Even transporting our crystals at pedestrian speeds we have less loss than laser systems for a given distance.”

What is Quantum Data Storage?


In July 2014, 
Microsoft released this video explaining quantum computing to showcase how the theory works. The video dumbs down the highly complex theory and explains it succinctly, splitting quantum computing and everyday computer science into two different subway systems.The idea of quantum computing is quite difficult to understand, but computer science researchers have been studying its capabilities for years. If harnesses correctly, quantum computing is far superior to the average computing we experience today on our laptops.
Storing data through this sort of computing offers unbreakable encryption, as particles such as photons of light are created in such a way that it naturally links them together.
Matthew Sellars, leader of the research team, said:
“We have never before had the possibility to explore quantum entanglement over such long distances. We should always be looking to test whether our theories match up with reality. Maybe in this new regime our theory of quantum mechanics breaks.”""


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