Open AccessPhysicsEngineeringComputer Science

Fei Yan, Philip Krantz, Youngkyu Sung, Morten Kjaergaard, Dan Campbell, Joel I. J. Wang, Terry P. Orlando, Simon Gustavsson, William D. Oliver

2018.3.26Physical Review Applied

DOI: 10.1103/physrevapplied.10.054062

tlooto Summary

A generalizable and extensible scheme for a two-qu bit coupler switch that controls the qubit-qubit coupling by modulating the coupler frequency is proposed, thereby promising a higher gate fidelity with current technologies.

Abstract

The prospect of computational hardware with quantum advantage relies critically on the quality of quantum gate operations. Imperfect two-qubit gates is a major bottleneck for achieving scalable quantum information processors. Here, we propose a generalizable and extensible scheme for a two-qubit coupler switch that controls the qubit-qubit coupling by modulating the coupler frequency. Two-qubit gate operations can be implemented by operating the coupler in the dispersive regime, which is non-invasive to the qubit states. We investigate the performance of the scheme by simulating a universal two-qubit gate on a superconducting quantum circuit, and find that errors from known parasitic effects are strongly suppressed. The scheme is compatible with existing high-coherence hardware, thereby promising a higher gate fidelity with current technologies.

Citation format

YAN, Fei, et al. A tunable coupling scheme for implementing high-fidelity two-qubit gates [preprint]. arXiv, 2018. arXiv:1803.09813.