RVELATIONS


Rejoignez le forum, c’est rapide et facile

RVELATIONS
RVELATIONS
Vous souhaitez réagir à ce message ? Créez un compte en quelques clics ou connectez-vous pour continuer.
Le deal à ne pas rater :
Bon plan achat en duo : 2ème robot cuiseur Moulinex Companion ...
600 €
Voir le deal

QUANTUM SCIENCE LIGHT ENERGY, WAVES, PHOTONS, PARTICULES N SOUND

Aller en bas

QUANTUM SCIENCE LIGHT ENERGY, WAVES, PHOTONS, PARTICULES N SOUND Empty QUANTUM SCIENCE LIGHT ENERGY, WAVES, PHOTONS, PARTICULES N SOUND

Message  OYABIO Mer 28 Oct - 14:18

MORE INFOS about SOUND, WAVES, PHOTONS, PARTICULES and QUANTUM SCIENCE

deep science stuff

Film in 4D with ultrashort electron pulses
http://www.deepstuff.org/film-in-4d-with-ultrashort-electron-pulses/

How we invented a Star Trek-style sonic tractor beam
http://www.deepstuff.org/how-we-invented-a-star-trek-style-sonic-tractor-beam/
levitating tibetans stones http://www.megageometry.com/2013/03/tibetan-monks-and-geometry-of.html
http://www.human-resonance.org/tibetan_levitation.html
http://www.americanantigravity.com/news/space/terry-moore-on-the-searl-effect.html
I hope they are all comunicating with each others because their discoveries here are complementary

Photons open the gateway for quantum networks
Date: October 23, 2015
source: University of Copenhagen - Niels Bohr Institute

http://www.sciencedaily.com/releases/2015/10/151023084132.htm

In Quantum Breakthrough, Scientists Get Two Photons To Interact

November 4, 2014 | by Janet Fang

http://www.iflscience.com/physics/quantum-breakthrough-scientists-get-two-photons-interact

Scientists in Germany have disproven assumptions that creating a "super-photon" was impossible, by finding a solution with a comparatively simple experiment.

http://www.dw.com/en/german-scientists-create-super-photon/a-6264884

Scientists create never-before-seen form of matter out of light

http://www.sciencedaily.com/releases/2013/09/130925132323.htm

and now for kids about PHOTONS

Photons CAN BE WAVES and can behave like particles in that they can interact with matter. In some cases the energy of the photon is absorbed by the matter. In this case the extra energy may be emitted as heat. (One example of this is the blacktop of the road getting hot in the sun)......

That means, if A photon can interact with matter, BE absorbed by the matter AND the extra energy be emitted as heat then it can make music, the extra energy being emitted as notes instead of heat, (because Sound is an energy vibration, or wave, that travels through matter (solid, liquid, or gas) and can be heard), if Scientists can Get Two Photons To Interact together in a controled environment, then they can make music, if scientists can create never-before-seen form of matter out of light, they can create never before seenform of music, (instead of making stupid weapons) it's as simple as that...

http://www.ducksters.com/science/physics/photons.php

SO SOON will we have MUSICAL ROADS ???? changing sounds with the difference of every vehicules taking it ??? (hey BRIAN ENO, you never thought of that hey ? you are lucky that OBY is here !!!)
OYABIO
OYABIO
Admin

Messages : 1813
Date d'inscription : 07/07/2010
Localisation : SA VOIE

https://rvlations.1fr1.net

Revenir en haut Aller en bas

QUANTUM SCIENCE LIGHT ENERGY, WAVES, PHOTONS, PARTICULES N SOUND Empty Re: QUANTUM SCIENCE LIGHT ENERGY, WAVES, PHOTONS, PARTICULES N SOUND

Message  OYABIO Sam 31 Oct - 14:05

Scientists design a full-scale architecture for a quantum computer in silicon http://www.deepstuff.org/scientists-design-a-full-scale-architecture-for-a-quantum-computer-in-silicon/

Scientists design a full-scale architecture for a quantum computer in silicon
October 31, 2015


Sydney, Australia – Australian scientists have designed a 3D silicon chip architecture based on single atom quantum bits, which is compatible with atomic-scale fabrication techniques – providing a blueprint to build a large-scale quantum computer.

Scientists and engineers from the Australian Research Council Centre of Excellence for Quantum Computation and Communication Technology (CQC2T), headquartered at the University of New South Wales (UNSW), are leading the world in the race to develop a scalable quantum computer in silicon – a material well-understood and favoured by the trillion-dollar computing and microelectronics industry.

Teams led by UNSW researchers have already demonstrated a unique fabrication strategy for realising atomic-scale devices and have developed the world’s most efficient quantum bits in silicon using either the electron or nuclear spins of single phosphorus atoms. Quantum bits – or qubits – are the fundamental data components of quantum computers.

One of the final hurdles to scaling up to an operational quantum computer is the architecture. Here it is necessary to figure out how to precisely control multiple qubits in parallel, across an array of many thousands of qubits, and constantly correct for ‘quantum’ errors in calculations.

Now, the CQC2T collaboration, involving theoretical and experimental researchers from the University of Melbourne and UNSW, has designed such a device. In a study published today inScience Advances, the CQC2T team describes a new silicon architecture, which uses atomic-scale qubits aligned to control lines – which are essentially very narrow wires – inside a 3D design.

“We have demonstrated we can build devices in silicon at the atomic-scale and have been working towards a full-scale architecture where we can perform error correction protocols – providing a practical system that can be scaled up to larger numbers of qubits,” says UNSW Scientia Professor Michelle Simmons, study co-author and Director of the CQC2T.

“The great thing about this work, and architecture, is that it gives us an endpoint. We now know exactly what we need to do in the international race to get there.”

In the team’s conceptual design, they have moved from a one-dimensional array of qubits, positioned along a single line, to a two-dimensional array, positioned on a plane that is far more tolerant to errors. This qubit layer is “sandwiched” in a three-dimensional architecture, between two layers of wires arranged in a grid.

By applying voltages to a sub-set of these wires, multiple qubits can be controlled in parallel, performing a series of operations using far fewer controls. Importantly, with their design, they can perform the 2D surface code error correction protocols in which any computational errors that creep into the calculation can be corrected faster than they occur.

“Our Australian team has developed the world’s best qubits in silicon,” says University of Melbourne Professor Lloyd Hollenberg, Deputy Director of the CQC2T who led the work with colleague Dr Charles Hill. “However, to scale up to a full operational quantum computer we need more than just many of these qubits – we need to be able to control and arrange them in such a way that we can correct errors quantum mechanically.”

“In our work, we’ve developed a blueprint that is unique to our system of qubits in silicon, for building a full-scale quantum computer.”

In their paper, the team proposes a strategy to build the device, which leverages the CQC2T’s internationally unique capability of atomic-scale device fabrication. They have also modelled the required voltages applied to the grid wires, needed to address individual qubits, and make the processor work.

“This architecture gives us the dense packing and parallel operation essential for scaling up the size of the quantum processor,” says Scientia Professor Sven Rogge, Head of the UNSW School of Physics. “Ultimately, the structure is scalable to millions of qubits, required for a full-scale quantum processor.”

Background

In classical computers, data is rendered as binary bits, which are always in one of two states: 0 or 1. However, a qubit can exist in both of these states at once, a condition known as a superposition. A qubit operation exploits this quantum weirdness by allowing many computations to be performed in parallel (a two-qubit system performs the operation on 4 values, a three-qubit system on 8, and so on).

As a result, quantum computers will far exceed today’s most powerful super computers, and offer enormous advantages for a range of complex problems, such as rapidly scouring vast databases, modelling financial markets, optimising huge metropolitan transport networks, and modelling complex biological molecules.

SEE THE LINKS N PICS N VIDEOS on this site source http://www.deepstuff.org/scientists-design-a-full-scale-architecture-for-a-quantum-computer-in-silicon/#Dur3CGZu69K1Ty8b.99
OYABIO
OYABIO
Admin

Messages : 1813
Date d'inscription : 07/07/2010
Localisation : SA VOIE

https://rvlations.1fr1.net

Revenir en haut Aller en bas

Revenir en haut

- Sujets similaires

 
Permission de ce forum:
Vous ne pouvez pas répondre aux sujets dans ce forum