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Archive for the ‘quantum physics’ category: Page 217

Jul 13, 2022

Nvidia rolls out a new platform to enable a hybrid quantum classical computing

Posted by in categories: finance, health, quantum physics, robotics/AI

The potential of quantum computing can in no way be undermined today as it solves some of the most obstinate challenges from bringing down global warming to dramatically bringing down drug discovery time and much more. And with this, several companies are in a spree to bring up quantum computing capabilities.

Nvidia has announced a unified computing platform that will bring in an open environment across quantum processors and classical computers. The company said that the platform aims at speeding enhanced quantum research and development across Artificial Intelligence (AI), High Performance Computing (HPC), health, finance and other disciplines.

The company claims that Nvidia Quantum Optimized Device Architecture or QODA is a first-of-its-kind platform for hybrid quantum-classical computers and aims to make quantum computing more accessible by creating a comprehensive hybrid quantum-classical programming model.

Jul 12, 2022

Can particles really be in two places at the same time?

Posted by in categories: particle physics, quantum physics

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When talking about quantum physics, people will often nonchalantly say that particles can be in two places at once. Physicist Sabine Hossenfelder explores what is actually going on.

Jul 12, 2022

Quantum Advantage Showdowns Have No Clear Winners

Posted by in categories: computing, quantum physics

A series of recent experiments between quantum and classical computers shows the term’s ever-evolving meaning.

Jul 12, 2022

Error-Correcting Surface Codes Get Experimental Vetting

Posted by in categories: quantum physics, robotics/AI

Two independent groups have experimentally demonstrated surface-code quantum error correction—an approach for remedying errors in quantum computations.


The small robotic crab can walk, bend, twist, turn and jump The smallest-ever remote-controlled walking robot has been created by Northwestern University engineers, and it takes the shape of a tiny, cute peekytoe crab. The tiny crabs, which are about half a millimeter wide, can bend, twist, craw.

Jul 11, 2022

“Brain” on a Chip — Toward a Precision Neuroelectronic Interface | Hongkun Park | TEDxKFAS

Posted by in categories: bioengineering, biotech/medical, chemistry, cyborgs, nanotechnology, neuroscience, quantum physics

Brain-machine interfaces (BMIs) are devices that enable direct communication/translation between biological neuronal networks (e.g. a brain or a spine) and external machines. They are currently being used as a tool for fundamental neuroscience research and also for treating neurological disorders and for manipulating neuro-prosthetic devices. As remarkable as today’s BMIs are, however, the next generation BMIs will require new hardware and software with improved resolution and specificity in order to precisely monitor and control the activities of complex neuronal networks. In this talk, I will describe my group’s effort to develop new neuroelectronic devices enabled by silicon nanotechnology that can serve as high-precision, highly multiplexed interface to neuronal networks. I will then describe the promises, as well as potential pitfalls, of next generation BMIs. Hongkun Park is a Professor of Chemistry and Chemical Biology and a Professor of Physics at Harvard University. He is also an Institute Member of the Broad Institute of Harvard and MIT and a member of the Harvard Center for Brain Science and Harvard Quantum Optics Center. He serves as an associate editor of Nano Letters. His research interests lie in exploring solid-state photonic, optoelectronic, and plasmonic devices for quantum information processing as well as developing new nano-and microelectronic interfaces for living cells, cell networks, and organisms. Awards and honors that he received include the Ho-Am Foundation Prize in Science, NIH Director’s Pioneer Award, and the US Vannevar Bush Faculty Fellowship, the David and Lucile Packard Foundation Fellowship for Science and Engineering, the Alfred P. Sloan Research Fellowship, and the Camille Dreyfus Teacher-Scholar Award. This talk was given at a TEDx event using the TED conference format but independently organized by a local community.

Jul 11, 2022

Researchers first to create a single-molecule diode

Posted by in categories: computing, engineering, nanotechnology, quantum physics

Under the direction of Latha Venkataraman, associate professor of applied physics at Columbia Engineering, researchers have designed a new technique to create a single-molecule diode, and, in doing so, they have developed molecular diodes that perform 50 times better than all prior designs. Venkataraman’s group is the first to develop a single-molecule diode that may have real-world technological applications for nanoscale devices. Their paper, “Single-Molecule Diodes with High On-Off Ratios through Environmental Control,” is published May 25 in Nature Nanotechnology.

“Our new approach created a single-molecule diode that has a high (250) rectification and a high “on” current (~ 0.1 micro Amps),” says Venkataraman. “Constructing a device where the active elements are only a single molecule has long been a tantalizing dream in nanoscience. This goal, which has been the ‘holy grail’ of molecular electronics ever since its inception with Aviram and Ratner’s 1974 seminal paper, represents the ultimate in functional miniaturization that can be achieved for an electronic device.”

With electronic devices becoming smaller every day, the field of has become ever more critical in solving the problem of further miniaturization, and single molecules represent the limit of miniaturization. The idea of creating a single-molecule diode was suggested by Arieh Aviram and Mark Ratner who theorized in 1974 that a molecule could act as a rectifier, a one-way conductor of electric current. Researchers have since been exploring the charge-transport properties of molecules. They have shown that single-molecules attached to metal electrodes (single-molecule junctions) can be made to act as a variety of circuit elements, including resistors, switches, transistors, and, indeed, diodes. They have learned that it is possible to see quantum mechanical effects, such as interference, manifest in the conductance properties of molecular junctions.

Jul 11, 2022

World’s First Quantum Integrated Circuit Made in Australia

Posted by in categories: bitcoin, cryptocurrencies, quantum physics, space

Good telescope that I’ve used to learn the basics: https://amzn.to/35r1jAk.
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Hello and welcome! My name is Anton and in this video, we will talk about an interesting achievement by the Australian researchers that may have managed to create a world’s first quantum integrated circuit.
Links:
https://sqc.com.au/
https://newsroom.unsw.edu.au/news/science-tech/unsw-quantum-…omic-scale.
https://newsroom.unsw.edu.au/news/science-tech/scientists-em…ers-future.
https://www.nature.com/articles/s41586-022-04706-0
https://en.wikipedia.org/wiki/Quantum_dot.
https://news.mit.edu/2019/storing-vaccine-history-skin-1218
Other quantum videos:



https://youtu.be/dPqNZ4aya8s.
https://youtu.be/z4iqjWxXKYk.

Continue reading “World’s First Quantum Integrated Circuit Made in Australia” »

Jul 11, 2022

Quantum Computing for Dummies

Posted by in categories: computing, quantum physics

Quantum computers may one day rapidly find solutions to problems no regular computer might ever hope to solve, but there are vanishingly few quantum programmers when compared with the number of conventional programmers in the world. A new beginner’s guide aims to walk would-be quantum programmers.

Jul 10, 2022

D-Wave’s 500-Qubit Machine Hits the Cloud

Posted by in categories: computing, quantum physics

The standard approach toward building quantum computers, called the gate model, involves arranging qubits in circuits and making them interact with each other in a fixed sequence. In contrast, Burnaby, Canada-based D-Wave has long focused on what are called annealing quantum computers.

Jul 10, 2022

Australian scientists put the quantum world on a microchip

Posted by in categories: computing, quantum physics

A first-of-its-kind quantum simulator could lead to the creation of never-before-seen materials powered by quantum phenomena.