Proposal for Heralded Generation and Detection of Entangled Microwave-Optical-Photon Pairs.


Journal

Physical review letters
ISSN: 1079-7114
Titre abrégé: Phys Rev Lett
Pays: United States
ID NLM: 0401141

Informations de publication

Date de publication:
10 Jan 2020
Historique:
received: 27 01 2019
entrez: 25 1 2020
pubmed: 25 1 2020
medline: 25 1 2020
Statut: ppublish

Résumé

Quantum state transfer between microwave and optical frequencies is essential for connecting superconducting quantum circuits to optical systems and extending microwave quantum networks over long distances. However, establishing such a quantum interface is extremely challenging because the standard direct quantum transduction requires both high coupling efficiency and small added noise. We propose an entanglement-based scheme-generating microwave-optical entanglement and using it to transfer quantum states via quantum teleportation-which can bypass the stringent requirements in direct quantum transduction and is robust against loss errors. In addition, we propose and analyze a counterintuitive design-suppress the added noise by placing the device at a higher temperature environment-which can improve both the device quality factor and power handling capability. We systematically analyze the generation and verification of entangled microwave-optical-photon pairs. The parameter for entanglement verification favors the regime of cooperativity mismatch and can tolerate certain thermal noises. Our scheme is feasible given the latest advances on electro-optomechanics, and can be generalized to various physical systems.

Identifiants

pubmed: 31976686
doi: 10.1103/PhysRevLett.124.010511
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

010511

Auteurs

Changchun Zhong (C)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.

Zhixin Wang (Z)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.

Changling Zou (C)

Key Laboratory of Quantum Information, CAS, University of Science and Technology of China, Hefei, Anhui 230026, China.

Mengzhen Zhang (M)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.

Xu Han (X)

Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.
Department of Electrical Engineering, Yale University, New Haven, Connecticut 06520, USA.

Wei Fu (W)

Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.
Department of Electrical Engineering, Yale University, New Haven, Connecticut 06520, USA.

Mingrui Xu (M)

Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.
Department of Electrical Engineering, Yale University, New Haven, Connecticut 06520, USA.

S Shankar (S)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.

Michel H Devoret (MH)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.

Hong X Tang (HX)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.
Department of Electrical Engineering, Yale University, New Haven, Connecticut 06520, USA.

Liang Jiang (L)

Department of Applied Physics, Yale University, New Haven, Connecticut 06520, USA.
Yale Quantum Institute, Yale University, New Haven, Connecticut 06520, USA.

Classifications MeSH