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Fault-Tolerant Quantum Computation with Static Linear Optics

journal contribution
posted on 2024-11-02, 18:56 authored by Ilan Tzitrin, Toshiyuki Matsuura, Rafael Alexander, Nicolas MenicucciNicolas Menicucci
The scalability of photonic implementations of fault-tolerant quantum computing based on Gottesman-Kitaev-Preskill (GKP) qubits is injured by the requirements of inline squeezing and reconfigurability of the linear optical network. In this work we propose a topologically error-corrected architecture that does away with these elements at no cost—in fact, at an advantage—to state preparation overheads. Our computer consists of three modules: a two-dimensional (2D) array of probabilistic sources of GKP states; a depth-four circuit of static beam splitters, phase shifters, and short delay lines; and a 2D array of homodyne detectors. The symmetry of our proposed circuit allows us to combine the effects of finite squeezing and uniform photon loss within the noise model, resulting in more comprehensive threshold estimates. These jumps over both architectural and analytical hurdles considerably expedite the construction of a photonic quantum computer.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1103/PRXQuantum.2.040353
  2. 2.
    ISSN - Is published in 26913399

Journal

Physical Review X Quantum

Volume

2

Number

040353

Issue

4

Start page

1

End page

16

Total pages

16

Publisher

American Physical Society

Place published

United States

Language

English

Copyright

© 2021 Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license.

Former Identifier

2006112175

Esploro creation date

2022-01-21

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