| Zugriffsnummer | 46111 |
| Dokumenttyp | Zeitschriftenartikel |
| Peer Review | mit Peer Review |
| Sprache | Englisch |
| Titel | Roadmap on quantum nanotechnologies |
| Autor(in); Institution |
Laucht, Arne; Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, UNSW Sydney, New South Wales, AUSTRALIA
Hohls, Frank; 2.5, Halbleiterphysik und Magnetismus, PTB-Braunschweig
Ubbelohde, Niels; 2.5, Halbleiterphysik und Magnetismus, PTB-Braunschweig
Fernando Gonzalez-Zalba, M.; Quantum Motion Technologies, Nexus, Discovery Way, Leeds, UK; Present address: Quantum Motion Technologies, Windsor House, Cornwall Road, UK
Reilly, David J.; School of Physics, University of Sydney, Sydney, AUSTRALIA; Microsoft Corporation, Station Q Sydney, University of Sydney, Sydney, AUSTRALIA
Stobbe, Søren; Department of Photonics Engineering, DTU Fotonik, Technical University of Denmark, Kgs. Lyngby, DENMARK
Schröder, Tim; Department of Physics, Humboldt-Universität zu Berlin, Berlin, GERMANY; Ferdinand-Braun-Institut, Leibniz-Institut für Höchstfrequenztechnik, Berlin, GERMANY
Scarlini, Pasquale; Department of Physics, ETH Zürich, Zürich, SWITZERLAND
Koski, Jonne V.; Department of Physics, ETH Zürich, Zürich, SWITZERLAND
Dzurak, Andrew; Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, UNSW Sydney, New South Wales, AUSTRALIA
Yang, Chih-Hwan; Centre for Quantum Computation and Communication Technology, School of Electrical Engineering and Telecommunications, UNSW Sydney, New South Wales, AUSTRALIA
Yoneda, Jun; Engineering and Telecommunications, UNSW Sydney, New South Wales, AUSTRALIA
Kuemmeth, Ferdinand; Niels Bohr Institute, University of Copenhagen, Copenhagen, DENMARK
Bluhm, Hendrik; JARA-FIT Institute for Quantum Information, RWTH Aachen University and Forschungszentrum Jülich, Aachen, GERMANY
Pla, Jarryd; School of Electrical Engineering and Telecommunications, UNSW Sydney, New South Wales, AUSTRALIA
Hill, Charles; School of Physics, University of Melbourne, Melbourne, AUSTRALIA
Salfi, Joe; Department of Electrical and Computer Engineering, The University of British Columbia, Vancouver BC, CANADA
Oiwa, Akira; The Institute of Scientific and Industrial Research, Osaka University, Ibaraki, Osaka, JAPAN; Center for Quantum Information and Quantum Biology, Institute for open and Transdisciplinary Research Initiative, Osaka University, Osaka, JAPAN; Center for Spintronics Research Network (CSRN), Graduate School of Engineering Science, Osaka University, Osaka, JAPAN
Muhonen, Juha T.; Department of Physics and Nanoscience Center, University of Jyväskylä, Jyväskylä, FINLAND
Verhagen, Ewold; Center for Nanophotonics, AMOLF, Amsterdam, THE NETHERLANDS
LaHaye, M. D.; Department of Physics, Syracuse University, Syracuse, New York, USA; Present Address: United States Air Force Research Laboratory, Rome, New York, USA
Hyun Ho, Kim; Institute for Quantum Computing, University of Waterloo, Waterloo, Ontario, CANADA; School of Materials Science and Engineering & Department of Energy Engineering Convergence, Kumoh National Institute of Technology, Gumi, KOREA
Tsen, Adam W.; Institute for Quantum Computing, University of Waterloo, Waterloo, Ontario, CANADA
Culcer, Dimitrie; School of Physics, The University of New South Wales, Sydney, AUSTRALIA; Australian Research Council Centre of Excellence in Future Low-Energy Electronics Technologies, UNSW Node, The University of New South Wales, Sydney, AUSTRALIA
Geresdi, Attila; QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, THE NETHERLANDS
Mol, Jan A.; School of Physics and Astronomy, Queen Mary University of London, London, UK
Mohan, Varun; Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, USA
Jain, Prashant K.; Department of Chemistry, University of Illinois at Urbana-Champaign, Urbana, USA; Materials Research Laboratory, University of Illinois at Urbana-Champaign, Urbana, USA; Department of Physics, University of Illinois at Urbana-Champaign, Urbana, USA
Baugh, Jonathan; Institute for Quantum Computing, University of Waterloo, Waterloo, Ontario, CANADA
|
| Quelle/Jahr | Nanotechnology: 32 (2021), 16, 1 - 49 |
| Artikelnummer | 162003 |
| ISSN | 0957-4484 (print) ; 1361-6528 (online) |
| DOI | |
| Verlag | Bristol: IOP Publishing |
| Freie Schlagworte | nanotechnology ; quantum phenomena ; quantum computing ; quantum electrodynamics |
| Zusammenfassung | Quantum phenomena are typically observable at length and time scales smaller than those of our everyday experience, often involving individual particles or excitations. The past few decades have seen a revolution in the ability to structure matter at the nanoscale, and experiments at the single particle level have become commonplace. This has opened wide new avenues for exploring and harnessing quantum mechanical effects in condensed matter. These quantum phenomena, in turn, have the potential to revolutionize the way we communicate, compute and probe the nanoscale world. Here, we review developments in key areas of quantum research in light of the nanotechnologies that enable them, with a view to what the future holds. Materials and devices with nanoscale features are used for quantum metrology and sensing, as building blocks for quantum computing, and as sources and detectors for quantum communication. They enable explorations of quantum behaviour and unconventional states in nano- and opto-mechanical systems, low-dimensional systems, molecular devices, nano-plasmonics, quantum electrodynamics, scanning tunnelling microscopy, and more. This rapidly expanding intersection of nanotechnology and quantum science/technology is mutually beneficial to both fields, laying claim to some of the most exciting scientific leaps of the last decade, with more on the horizon. |
| Kostenfreier Zugang | Open Access Hybrid |
| Rechteinformation | CC BY 4.0 ; Creative Commons Attribution 4.0 License |
| Themenbereich der Metrologie | Elektrizität und Magnetismus |
| Forschungsprojekt | 17FUN04: SEQUOIA: Single-electron quantum optics for quantum-enhanced measurements |
| Förderinformationen (1) |
Förderername: European Commission (EC)
Förderer ID: 0000 0001 2242 8989 Förderer ID Typ: ISNI Förderprogramm: EMPIR 2017 Fundamental Titel der Förderung: 17FUN04: SEQUOIA: Single-electron quantum optics for quantum-enhanced measurements Förderungsnummer: 17FUN04 |
Zitierung
Laucht, A., Hohls, F., Ubbelohde, N., Fernando Gonzalez-Zalba, M., Reilly, D. J., Stobbe, S., Schröder, T., Scarlini, P., Koski, J. V., Dzurak, A., Yang, C.-H., Yoneda, J., Kuemmeth, F., Bluhm, H., Pla, J., Hill, C., Salfi, J., Oiwa, A., Muhonen, J. T., Verhagen, E., LaHaye, M. D., Hyun Ho, K., Tsen, A. W., Culcer, D., Geresdi, A., Mol, J. A., Mohan, V., Jain, P. K., & Baugh, J. (2021). Roadmap on quantum nanotechnologies. Nanotechnology, 32(16), 1–49. https://doi.org/10.1088/1361-6528/abb333