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Laucht, Arne ; Hohls, Frank ; Ubbelohde, Niels ; Fernando Gonzalez-Zalba, M. ; Reilly, David J. ; Stobbe, Søren ; Schröder, Tim ; Scarlino, Pasquale ; Koski, Jonne V. ; Dzurak, Andrew ; Yang, Chih-Hwan ; Yoneda, Jun ; Kuemmeth, Ferdinand ; Bluhm, Hendrik ; Pla, Jarryd ; Hill, Charles ; Salfi, Joe ; Oiwa, Akira ; Muhonen, Juha T ; Verhagen, Ewold ; LaHaye, M. D. ; Kim, Hyun Ho ; Tsen, Adam W. ; Culcer, Dimitrie ; Geresdi, Attila ; Mol, Jan A. ; Mohan, Varun ; Jain, Prashant K. ; Baugh, Jonathan

Roadmap on quantum nanotechnologies

Laucht, Arne, Hohls, Frank, Ubbelohde, Niels, Fernando Gonzalez-Zalba, M., Reilly, David J., Stobbe, Søren, Schröder, Tim, Scarlino, Pasquale, Koski, Jonne V., Dzurak, Andrew, Yang, Chih-Hwan, Yoneda, Jun, Kuemmeth, Ferdinand , Bluhm, Hendrik, Pla, Jarryd, Hill, Charles, Salfi, Joe, Oiwa, Akira, Muhonen, Juha T, Verhagen, Ewold, LaHaye, M. D., Kim, Hyun Ho, Tsen, Adam W., Culcer, Dimitrie, Geresdi, Attila, Mol, Jan A., Mohan, Varun, Jain, Prashant K. and Baugh, Jonathan (2021) Roadmap on quantum nanotechnologies. Nanotechnology 32 (16), p. 162003.

Date of publication of this fulltext: 09 Apr 2026 09:28
Article
DOI to cite this document: 10.5283/epub.79186


Abstract

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 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.



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Details

Item typeArticle
Journal or Publication TitleNanotechnology
Publisher:IOP Publishing
Open Access Type:CC-License
Volume:32
Number of Issue or Book Chapter:16
Page Range:p. 162003
Date4 February 2021
InstitutionsPhysics > Institute of Experimental and Applied Physics
Identification Number
ValueType
10.1088/1361-6528/abb333DOI
2011.13907arXiv ID
Dewey Decimal Classification500 Science > 530 Physics
StatusPublished
RefereedYes, this version has been refereed
Created at the University of RegensburgNo
URN of the UB Regensburgurn:nbn:de:bvb:355-epub-791866
Item ID79186

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