Affiliation:
1. Korea Institute of Science and Technology (KIST)
2. Seoul National University
3. Korea University
4. The University of Sydney
5. The University of Chicago
Abstract
Hybridizing different degrees of freedom or physical platforms potentially offers various advantages in building scalable quantum architectures. Here, we introduce a fault-tolerant hybrid quantum computation by building on the advantages of both discrete-variable (DV) and continuous-variable (CV) systems. In particular, we define a CV-DV hybrid qubit with a bosonic cat code and a single photon, which is implementable in current photonic platforms. Due to the cat code encoded in the CV part, the predominant loss errors are readily correctable without multiqubit encoding, while the logical basis is inherently orthogonal due to the DV part. We design fault-tolerant architectures by concatenating hybrid qubits and an outer DV quantum error-correction code such as a topological code, exploring their potential merit in developing scalable quantum computation. We demonstrate by numerical simulations that our scheme is at least an order of magnitude more resource efficient compared to all previous proposals in photonic platforms, allowing us to achieve a record-high loss threshold among existing CV and hybrid approaches. We discuss the realization of our approach not only in all-photonic platforms but also in other hybrid platforms including superconducting and trapped-ion systems, which allows us to find various efficient routes toward fault-tolerant quantum computing.
Published by the American Physical Society
2024
Funder
Korea Institute of Science and Technology
National Research Foundation of Korea
National Science Foundation
Packard Foundation
Korean government
Institute of Information & Communications Technology Planning & Evaluation
Army Research Office
ARO Multidisciplinary University Initiative
Air Force Office of Scientific Research (AFOSR) MURI
NTT Research
Publisher
American Physical Society (APS)