idw – Informationsdienst Wissenschaft

Nachrichten, Termine, Experten

Grafik: idw-Logo
Science Video Project
idw-Abo

idw-News App:

AppStore

Google Play Store



Instanz:
Teilen: 
18.01.2022 14:37

PhotonQ: 16 million euros for photonic quantum processors

Andrea Mayer-Grenu Abteilung Hochschulkommunikation
Universität Stuttgart

    Quantum computers will one day be able to solve problems at high speed that cannot be handled by classical computer systems. However, in order for these computers to become practical, they must process a significantly higher number of qubits and have lower error rates. A research project led by Prof. Stefanie Barz from the University of Stuttgart is now developing a photonic quantum processor for this purpose, which allows the realisation of quantum algorithms with only a few qubits and, in the future, should enable rapid scaling to qubit numbers that are relevant for practical applications.

    There are many different approaches to researching new, scalable quantum processors: atom and ion traps, superconductors, semiconductors or entangled photons. In PhotonQ, funded by the Federal Ministry of Education and Research (BMBF) with 16 million euros, the universities of Stuttgart, Würzburg, Mainz and Ulm, the Technical University of Munich, the Institute for Microelectronics Stuttgart and Vanguard Automation GmbH will develop a photonic quantum processor. The heart of the quantum processor is an integrated photonic chip.

    Measurement-based quantum computing approach

    The starting point for a measurement-based quantum processor is a highly entangled quantum state. Entanglement means that a measurement on one particle can change the state of another particle regardless of distance. To perform universal quantum computations, (adaptive) measurements are made on a large entangled state adapted to the computational problem at hand. "The challenge here is to produce and process such a state in a photonic system with high efficiency and quality. The development of integrated optical components and circuits plays a central role here. Very importantly, optical losses in the system must be kept as low as possible. At the same time, there must be a high level of efficiency in the generation and detection of photons. This requires the development of new or significantly improved components in all subsystems," explains project coordinator Prof. Stefanie Barz from the Institute for Functional Matter and Quantum Technologies at the University of Stuttgart. Accordingly, deterministic photon sources, scalable silicon photonic circuits, better interconnection technology and novel single photon detectors will be realised in the PhotonQ project.

    Entire system at the University of Stuttgart

    The overall system of the quantum processor will be built at the University of Stuttgart. It will demonstrate quantum information processing with eight qubits and prove the fundamental suitability of the measurement-based principle for photonic quantum computing. Over the project period of four years (2022 - 2025), four generations of processors will be developed, which will increase in complexity. The partners are developing special hardware components or theory and software concepts for optimising and characterising the processor.

    PhotonQ is already the second project at the University of Stuttgart funded under the BMBF's "Quantum Processors and Technologies for Quantum Computers" measure. Both projects underline the research strength of the University of Stuttgart in its profile area of quantum technology.


    Wissenschaftliche Ansprechpartner:

    Prof. Dr. Stefanie Barz, University of Stuttgart, Institute for Functional Matter and Quantum Technologies, Tel. +49 711 685-65254 E-mail: barz@fmq.uni-stuttgart.de


    Weitere Informationen:

    http://www.photonQ.de (project website)


    Bilder

    Integrated photonic circuits are at the heart of the quantum processor.
    Integrated photonic circuits are at the heart of the quantum processor.
    Max Kovalenko
    University of Stuttgart

    Prof. Stefanie Barz, University of Stuttgart
    Prof. Stefanie Barz, University of Stuttgart
    Uli Regenscheit
    University of Stuttgart


    Anhang
    attachment icon Concept of the measurement-based quantum processor.

    Merkmale dieser Pressemitteilung:
    Journalisten, Wissenschaftler
    Elektrotechnik, Informationstechnik, Physik / Astronomie
    überregional
    Forschungs- / Wissenstransfer, Forschungsprojekte
    Englisch


     

    Integrated photonic circuits are at the heart of the quantum processor.


    Zum Download

    x

    Prof. Stefanie Barz, University of Stuttgart


    Zum Download

    x

    Hilfe

    Die Suche / Erweiterte Suche im idw-Archiv
    Verknüpfungen

    Sie können Suchbegriffe mit und, oder und / oder nicht verknüpfen, z. B. Philo nicht logie.

    Klammern

    Verknüpfungen können Sie mit Klammern voneinander trennen, z. B. (Philo nicht logie) oder (Psycho und logie).

    Wortgruppen

    Zusammenhängende Worte werden als Wortgruppe gesucht, wenn Sie sie in Anführungsstriche setzen, z. B. „Bundesrepublik Deutschland“.

    Auswahlkriterien

    Die Erweiterte Suche können Sie auch nutzen, ohne Suchbegriffe einzugeben. Sie orientiert sich dann an den Kriterien, die Sie ausgewählt haben (z. B. nach dem Land oder dem Sachgebiet).

    Haben Sie in einer Kategorie kein Kriterium ausgewählt, wird die gesamte Kategorie durchsucht (z.B. alle Sachgebiete oder alle Länder).