Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group

Silicon quantum photonic device for multidimensional controlled unitaries

Not Accessible

Your library or personal account may give you access

Abstract

We present a fully reconfigurable silicon quantum photonic device capable of performing controlled four-dimensional unitary operations with 0.84 ± 0.02 fidelity. We report its characterisation by process tomography and deploy it to successfully perform a quantum model learning protocol.

© 2020 The Author(s)

PDF Article  |   Presentation Video
More Like This
Two-qubits Controlled-unitary Quantum Gates for Quantum Computing by Silicon Photonic Chip

J. G. Huang, L. C. Kwek, J. B. Gong, W. B. Gao, Y. D. Chong, W. Ser, and A. Q. Liu
JW2A.21 CLEO: Applications and Technology (CLEO:A&T) 2017

A silicon photonics processor for error-protected measurement-based quantum computing

Caterina Vigliar, Stefano Paesani, Yunhong Ding, Jeremy C. Adcock, Jianwei Wang, Sam Morley-Short, Davide Bacco, Leif K. Oxenløwe, Mark G. Thompson, John G. Rarity, and Anthony Laing
FTh1C.3 Frontiers in Optics (FiO) 2020

Large-scale Integration of Multidimensional Quantum Photonics Circuits on Silicon

J. Wang, S. Paesani, Y. Ding, R. Santagati, P. Skrzypczyk, A. Salavrakos, J. Tura, R. Augusiak, L. Mančinska, D. Bacco, D. Bonneau, J. Silverstone, Q. Gong, A. Acín, K. Rottwitt, L. Oxenløwe, J. O’Brien, A. Laing, and M. Thompson
JTh5B.4 CLEO: Applications and Technology (CLEO:A&T) 2018

Presentation Video

Presentation video access is available to:

  1. Optica Publishing Group subscribers
  2. Technical meeting attendees
  3. Optica members who wish to use one of their free downloads. Please download the article first. After downloading, please refresh this page.

Contact your librarian or system administrator
or
Log in to access Optica Member Subscription or free downloads


More Like This
Two-qubits Controlled-unitary Quantum Gates for Quantum Computing by Silicon Photonic Chip

J. G. Huang, L. C. Kwek, J. B. Gong, W. B. Gao, Y. D. Chong, W. Ser, and A. Q. Liu
JW2A.21 CLEO: Applications and Technology (CLEO:A&T) 2017

A silicon photonics processor for error-protected measurement-based quantum computing

Caterina Vigliar, Stefano Paesani, Yunhong Ding, Jeremy C. Adcock, Jianwei Wang, Sam Morley-Short, Davide Bacco, Leif K. Oxenløwe, Mark G. Thompson, John G. Rarity, and Anthony Laing
FTh1C.3 Frontiers in Optics (FiO) 2020

Large-scale Integration of Multidimensional Quantum Photonics Circuits on Silicon

J. Wang, S. Paesani, Y. Ding, R. Santagati, P. Skrzypczyk, A. Salavrakos, J. Tura, R. Augusiak, L. Mančinska, D. Bacco, D. Bonneau, J. Silverstone, Q. Gong, A. Acín, K. Rottwitt, L. Oxenløwe, J. O’Brien, A. Laing, and M. Thompson
JTh5B.4 CLEO: Applications and Technology (CLEO:A&T) 2018

Integrated Quantum Photonics on Silicon Platform

Yunhong Ding, Daniel Llewellyn, Imad Faruque, Stefano Paesani, Davide Bacco, Karsten Rottwitt, Anthony Laing, Mark Thompson, Jianwei Wang, and Leif K. Oxenløwe
W4C.6 Optical Fiber Communication Conference (OFC) 2020

Finding excited states of physical Hamiltonians on a silicon quantum photonic device

R. Santagati, J. Wang, A.A. Gentile, S. Paesani, N. Wiebe, J. McClean, D. Bonneau, J.W. Silverstone, S. Morley-Short, P.J. Shadbolt, D.P. Tew, X. Zhou, J. L. O’Brien, and M. G. Thompson
FM4E.2 Frontiers in Optics (FiO) 2017

Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.