Close Menu
    Facebook X (Twitter) Instagram
    SciTechDaily
    • Biology
    • Chemistry
    • Earth
    • Health
    • Physics
    • Science
    • Space
    • Technology
    Facebook X (Twitter) Pinterest YouTube RSS
    SciTechDaily
    Home»Technology»Super-Fast Quantum Light Detector Paves Way for Higher Performance Quantum Computers
    Technology

    Super-Fast Quantum Light Detector Paves Way for Higher Performance Quantum Computers

    By University of BristolNovember 9, 20202 Comments4 Mins Read
    Facebook Twitter Pinterest Telegram LinkedIn WhatsApp Email Reddit
    Share
    Facebook Twitter LinkedIn Pinterest Telegram Email Reddit
    Integrated Quantum Light Detector
    The integrated detector combines a silicon photonic chip with a silicon micro-electronics chip, yielding advanced speed in detecting quantum light. Credit: University of Bristol

    Researchers have developed a tiny device that paves the way for higher performance quantum computers and quantum communications, making them significantly faster than the current state-of-the-art.

    Bristol researchers have developed a tiny device that paves the way for higher performance quantum computers and quantum communications, making them significantly faster than the current state-of-the-art.

    Researchers from the University of Bristol’s Quantum Engineering Technology Labs (QET Labs) and Université Côte d’Azur have made a new miniaturized light detector to measure quantum features of light in more detail than ever before. The device, made from two silicon chips working together, was used to measure the unique properties of “squeezed” quantum light at record high speeds.

    Harnessing unique properties of quantum physics promises novel routes to outperform the current state-of-the-art in computing, communication and measurement. Silicon photonics — where light is used as the carrier of information in silicon micro-chips — is an exciting avenue towards these next-generation technologies.

    “Squeezed light is a quantum effect that is very useful. It can be used in quantum communications and quantum computers and has already been used by the LIGO and Virgo gravitational wave observatories to improve their sensitivity, helping to detect exotic astronomical events such as black hole mergers. So, improving the ways we can measure it can have a big impact,” said Joel Tasker, co-lead author.

    Measuring squeezed light requires detectors that are engineered for ultra-low electronic noise, in order to detect the weak quantum features of light. But such detectors have so far been limited in the speed of signals that can be measured — about one thousand million cycles per second.

    “This has a direct impact on the processing speed of emerging information technologies such as optical computers and communications with very low levels of light. The higher the bandwidth of your detector, the faster you can perform calculations and transmit information,” said co-lead author Jonathan Frazer.

    The integrated detector has so far been clocked at an order of magnitude faster than the previous state of the art, and the team is working on refining the technology to go even faster.

    The detector’s footprint is less than a square millimeter — this small size enables the detector’s high-speed performance. The detector is built out of silicon microelectronics and a silicon photonics chip.

    Around the world, researchers have been exploring how to integrate quantum photonics onto a chip to demonstrate scalable manufacture.

    “Much of the focus has been on the quantum part, but now we’ve begun integrating the interface between quantum photonics and electrical readout. This is needed for the whole quantum architecture to work efficiently. For homodyne detection, the chip-scale approach results in a device with a tiny footprint for mass-manufacture, and importantly it provides a boost in performance,” said Professor Jonathan Matthews, who directed the project.

    Reference: “Silicon photonics interfaced with integrated electronics for 9 GHz measurement of squeezed light” by Joel F. Tasker, Jonathan Frazer, Giacomo Ferranti, Euan J. Allen, Léandre F. Brunel, Sébastien Tanzilli, Virginia D’Auria & Jonathan C. F. Matthews, 9 November 2020, Nature Photonics.
    DOI: 10.1038/s41566-020-00715-5

    This work’s support includes from Matthews’ European Research Council starting grant ERC-2018-STG 803665 “Photonics for Engineered Quantum Enhanced Measurement”, that aims to quantum-enhanced sensing capabilities on-chip and from the Engineering and Physical Sciences Research Council that funded the studentships of lead authors Joel Tasker and Jonathan Frazer. All funding sources are outlined in full the paper.

    The Quantum Engineering Technology Labs (QET Labs) at the University of Bristol was launched in April 2015 and encompasses activity of over 100 academics, staff, and students. It brings together the broader quantum and related activity at Bristol to maximize opportunities for new science discoveries that underpin engineering and technology development.

    Bristol’s EPSRC-funded Quantum Engineering Centre for Doctoral Training offers an exceptional training and development experience for those wishing to pursue a career in the emerging quantum technologies industry or in academia. It supports the understanding of sound fundamental scientific principles and their practical application to real-world challenges.

    Never miss a breakthrough: Join the SciTechDaily newsletter.
    Follow us on Google and Google News.

    Photonics Quantum Computing Quantum Information Science University of Bristol
    Share. Facebook Twitter Pinterest LinkedIn Email Reddit

    Related Articles

    Quantum Internet Takes Shape With 100 km Secure Transmission Milestone

    Harvard Just Collapsed a Quantum Computer Onto a Chip

    Photonics on a Chip: The Future of Quantum Innovation

    How Silicon Ring Resonators Are Rewriting the Rules of Quantum Computing

    Compact Quantum Light Processing: Time-Bending Optical Computing Breakthrough

    Quantum Networks Transformed: Nanometric Optomechanical Cavities Unlock New Realms

    Innovative Atomic Device Enables a Simpler Way To Connect Quantum Computers

    Photonic Chip Breakthrough Opens a Path Toward Quantum Computing in Real-World Conditions

    Generating Photons for Communication Between Processors in a Quantum Computing System

    2 Comments

    1. Muza Cano on November 11, 2020 1:00 am

      CAN PHOTONICS BE USED IN BIO-TECHNOLOGY (BIO-ENGINEERING), AGAINST COVID-19’S ANTENAS, TO DEFORM, GROUND THEM,SHORT-CIRCUIT THEM, OR NEUTRALIZE THEM, IN AN EFFORT TO STOP IT FROM BINDING WITH THE CELL’S ACE-2 PORTS OR RECEPTORS? THIS COULD PREVENT CORONAVIRUS FROM REPLICATING, RENDERING INACTIVE…

      Reply
    2. Muza Cano on November 11, 2020 1:09 am

      WHAT APPLICATIONS DOES PHOTONICS HAVE IN THE FIGHT AGAINST COVID-19. OR IN THE PROTECTION OF THE CELL’S ACE-2 RECEPTORS AGAINST CORONAVIRUS ANTENNAS INFILTRATION?..

      Reply
    Leave A Reply Cancel Reply

    • Facebook
    • Twitter
    • Pinterest
    • YouTube

    Don't Miss a Discovery

    Subscribe for the Latest in Science & Tech!

    Trending News

    The Strange “Spacetime Crystal” That Can Suddenly Turn Into a Black Hole

    The Surprising Way Asteroids May Have Helped Life Begin on Earth

    Vast Hidden Structure Discovered Under Miles of Ice in East Antarctica

    A Surprising Discovery Suggests Autism Is Not One Condition

    New Alzheimer’s Discovery Could Change How Scientists Fight the Disease

    Yale Discovery Overturns Long-Held “Evolutionary Dead End” Theory

    UCLA Scientists Uncover a “Hidden Weakness” in Some of the World’s Deadliest Cancers

    Humpback Whale Stuns Scientists With 15,000 Kilometer Journey Across Oceans

    Follow SciTechDaily
    • Facebook
    • Twitter
    • YouTube
    • Pinterest
    • Newsletter
    • RSS
    SciTech News
    • Biology News
    • Chemistry News
    • Earth News
    • Health News
    • Physics News
    • Science News
    • Space News
    • Technology News
    Recent Posts
    • MIT’s New Dual-Mode Rocket System Could Send Tiny Satellites to Mars
    • Scientists Discover a Biological Clock Unlike Anything Seen Before
    • This “Zombie” Sea Creature Keeps Growing After Being Cut Apart
    • The Brain May Not Need Full Sleep To Recover, New Research Finds
    • Scientists Reveal the Hidden Way Caffeine Sabotages Sleep
    Copyright © 1998 - 2026 SciTechDaily. All Rights Reserved.
    • Science News
    • About
    • Contact
    • Editorial Board
    • Privacy Policy
    • Terms of Use

    Type above and press Enter to search. Press Esc to cancel.