Back to Search Start Over

Hardware-Efficient, Fault-Tolerant Quantum Computation with Rydberg Atoms

Authors :
Iris Cong
Harry Levine
Alexander Keesling
Dolev Bluvstein
Sheng-Tao Wang
Mikhail D. Lukin
Source :
Physical Review X, Vol 12, Iss 2, p 021049 (2022)
Publication Year :
2022
Publisher :
American Physical Society, 2022.

Abstract

Neutral-atom arrays have recently emerged as a promising platform for quantum information processing. One important remaining roadblock for the large-scale application of these systems is the ability to perform error-corrected quantum operations. To entangle the qubits in these systems, atoms are typically excited to Rydberg states, which could decay or give rise to various correlated errors that cannot be addressed directly through traditional methods of fault-tolerant quantum computation. In this work, we provide the first complete characterization of these sources of error in a neutral-atom quantum computer and propose hardware-efficient, fault-tolerant quantum computation schemes that mitigate them. Notably, we develop a novel and distinctly efficient method to address the most important errors associated with the decay of atomic qubits to states outside of the computational subspace. These advances allow us to significantly reduce the resource cost for fault-tolerant quantum computation compared to existing, general-purpose schemes. Our protocols can be implemented in the near term using state-of-the-art neutral-atom platforms with qubits encoded in both alkali and alkaline-earth atoms.

Subjects

Subjects :
Physics
QC1-999

Details

Language :
English
ISSN :
21603308
Volume :
12
Issue :
2
Database :
Directory of Open Access Journals
Journal :
Physical Review X
Publication Type :
Academic Journal
Accession number :
edsdoj.4091ab3a95fd4640a15700aa1087ec6f
Document Type :
article
Full Text :
https://doi.org/10.1103/PhysRevX.12.021049