The quantum technologies roadmap: a European community view

Дорожная карта квантовых технологий: взгляд европейского сообщества
Fedor Jelezko, Immanuel Bloch, Andreas Wallraff, Harry Buhrman, Antonio Acín, Nicolas Gisin, Steffen J. Glaser, D. Estève, Frank K. Wilhelm, Jens Eisert, Maciej Lewenstein, Piet O. Schmidt, Tommaso Calarco, Ian A. Walmsley, Rob Thew, Stefan Kuhr, Christopher Eichler, Max F. Riedel
2018-08-15

quantum communicationquantum computationquantum sensing and metrologyquantum simulationquantum technologies
Within the last two decades, quantum technologies (QT) have made tremendous progress, moving from Nobel Prize award-winning experiments on quantum physics (1997: Chu, Cohen-Tanoudji, Phillips; 2001: Cornell, Ketterle, Wieman; 2005: Hall, Hänsch-, Glauber; 2012: Haroche, Wineland) into a cross-disciplinary field of applied research. Technologies are being developed now that explicitly address individual quantum states and make use of the 'strange' quantum properties, such as superposition and entanglement. The field comprises four domains: quantum communication, where individual or entangled photons are used to transmit data in a provably secure way; quantum simulation, where well-controlled quantum systems are used to reproduce the behaviour of other, less accessible quantum systems; quantum computation, which employs quantum effects to dramatically speed up certain calculations, such as number factoring; and quantum sensing and metrology, where the high sensitivity of coherent quantum systems to external perturbations is exploited to enhance the performance of measurements of physical quantities. In Europe, the QT community has profited from several EC funded coordination projects, which, among other things, have coordinated the creation of a 150-page QT Roadmap ( http://qurope.eu/h2020/qtflagship/roadmap2016 ). This article presents an updated summary of this roadmap.
1
European coordination projects supported the development of a 150-page quantum technologies roadmap, whose updated summary is presented in this article.
2
Quantum communication uses individual or entangled photons to enable provably secure data transmission.
3
Quantum simulation, computation, and sensing exploit controlled quantum effects for system emulation, computational speedups, and enhanced measurement sensitivity.
4
Quantum technologies have progressed from foundational quantum-physics experiments into a cross-disciplinary field of applied research.
5
The field is organized into four domains: quantum communication, simulation, computation, and sensing and metrology.

European quantum technologies research and development across quantum communication, quantum simulation, quantum computation, and quantum sensing and metrology

The development status, applications, and future research directions of quantum technologies in Europe

Publication Details
Publication Date
2018-08-15
Journal
Publisher
ISSN
Cited by
693
Access Type
Author Information
Authors
Fedor Jelezko
Immanuel Bloch
Andreas Wallraff
Harry Buhrman
Antonio Acín
Nicolas Gisin
Steffen J. Glaser
D. Estève
Frank K. Wilhelm
Jens Eisert
Maciej Lewenstein
Piet O. Schmidt
Tommaso Calarco
Ian A. Walmsley
Rob Thew
Stefan Kuhr
Christopher Eichler
Max F. Riedel
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat →
Make a presentation
100%