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Realizing all-to-all couplings among detachable quantum modules using a microwave quantum state router

Authors :
Zhou, Chao
Lu, Pinlei
Praquin, Matthieu
Chien, Tzu-Chiao
Kaufman, Ryan
Cao, Xi
Xia, Mingkang
Mong, Roger
Pfaff, Wolfgang
Pekker, David
Hatridge, Michael
Publication Year :
2021

Abstract

One of the primary challenges in realizing large-scale quantum processors is the realization of qubit couplings that balance interaction strength, connectivity, and mode confinement. Moreover, it is very desirable for the device elements to be detachable, allowing components to be built, tested, and replaced independently. In this work, we present a microwave quantum state router, centered on parametrically driven, Josephson-junction based three-wave mixing, that realizes all-to-all couplings among four detachable quantum modules. We demonstrate coherent exchange among all four communication modes, with an average full-iSWAP time of 764ns and average inferred inter-module exchange fidelity of 0.969, limited by mode coherence. We also demonstrate photon transfer and pairwise entanglement between module qubits, and parallel operation of simultaneous iSWAP exchange across the router. Our router-module architecture serves as a prototype of modular quantum computer that has great potential for enabling flexible, demountable, large-scale quantum networks of superconducting qubits and cavities.

Subjects

Subjects :
Quantum Physics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2109.06848
Document Type :
Working Paper