Abstract

Phase estimation algorithms are key protocols in quantum information processing. Besides applications in quantum computing, they can also be employed in metrology as they allow for fast extraction of information stored in the quantum state of a system. Here, we implement two suitably modified phase estimation procedures, the Kitaev and the semiclassical Fourier-transform algorithms, using an artificial atom realized with a superconducting transmon circuit. We demonstrate that both algorithms yield a flux sensitivity exceeding the classical shot-noise limit of the device, allowing one to approach the Heisenberg limit. Our experiment paves the way for the use of superconducting qubits as metrological devices which are potentially able to outperform the best existing flux sensors with a sensitivity enhanced by few orders of magnitude.

Details

Title
Quantum-enhanced magnetometry by phase estimation algorithms with a single artificial atom
Author
Danilin, S 1 ; Lebedev, A V 2 ; Vepsäläinen, A 1 ; Lesovik, G B 3 ; Blatter, G 4 ; Paraoanu, G S 1 

 Low Temperature Laboratory, Department of Applied Physics, Aalto University School of Science, Aalto, Finland 
 Theoretische Physik, Zürich, Switzerland; Moscow Institute of Physics and Technology, Dolgoprudny, Moscow District, Russia 
 Moscow Institute of Physics and Technology, Dolgoprudny, Moscow District, Russia; L.D. Landau Institute for Theoretical Physics RAS, Chernogolovka, Moscow Region, Russia 
 Theoretische Physik, Zürich, Switzerland 
Pages
1-8
Publication year
2018
Publication date
Jun 2018
Publisher
Nature Publishing Group
e-ISSN
20566387
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2061817739
Copyright
© 2018. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.