High-dimensional one-way quantum processing implemented on d-level cluster states

Authored by

Christian Reimer, Stefania Sciara, Piotr Roztocki, Mehedi Islam, Luis Romero Cortés, Yanbing Zhang, Bennet Fischer, Sébastien Loranger, Raman Kashyap, Alfonso Cino, Sai T. Chu, Brent E. Little, David J. Moss, Lucia Caspani, William J. Munro, José Azaña, Michael Kues, Roberto Morandotti

Abstract

Taking advantage of quantum mechanics for executing computational tasks faster than classical computers 1 or performing measurements with precision exceeding the classical limit 2,3 requires the generation of specific large and complex quantum states. In this context, cluster states 4 are particularly interesting because they can enable the realization of universal quantum computers by means of a ‘one-way’ scheme 5 , where processing is performed through measurements 6 . The generation of cluster states based on sub-systems that have more than two dimensions, d-level cluster states, provides increased quantum resources while keeping the number of parties constant 7 , and also enables novel algorithms 8 . Here, we experimentally realize, characterize and test the noise sensitivity of three-level, four-partite cluster states formed by two photons in the time 9 and frequency 10 domain, confirming genuine multi-partite entanglement with higher noise robustness compared to conventional two-level cluster states 6,11–13 . We perform proof-of-concept high-dimensional one-way quantum operations, where the cluster states are transformed into orthogonal, maximally entangled d-level two-partite states by means of projection measurements. Our scalable approach is based on integrated photonic chips 9,10 and optical fibre communication components, thus achieving new and deterministic functionalities.

Details

External Organisation(s)
INRS Universite d'avant-garde
Harvard University
University of Palermo
École polytechnique de Montréal
City University of Hong Kong
Xi'an Institute of Optics and Precision Mechanics Chinese Academy of Sciences
Swinburne University of Technology
University of Strathclyde
Nippon Telegraph & Telephone
Research Organization of Information and Systems National Institute of Informatics
University of Glasgow
University of Electronic Science and Technology of China
St. Petersburg National Research University of Information Technologies, Mechanics and Optics (ITMO)
Type
Article
Journal
Nature Physics
Volume
15
Pages
148-153
No. of pages
6
ISSN
1745-2473
Publication date
03.12.2018
Publication status
Published
Peer reviewed
Yes
ASJC Scopus subject areas
General Physics and Astronomy
Electronic version(s)
https://strathprints.strath.ac.uk/66397/1/Reimer_etal_NP_2018_High_dimensional_one_way_quantum_processing.pdf (Access: Open )
https://doi.org/10.1038/s41567-018-0347-x (Access: Closed )
 
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