Demonstration of Universal Parametric Entangling Gates on a Multi-Qubit Lattice
Abstract
We show that parametric coupling techniques can be used to generate selective entangling interactions for multi-qubit processors. By inducing coherent population exchange between adjacent qubits under frequency modulation, we implement a universal gateset for a linear array of four superconducting qubits. An average process fidelity of is estimated for three two-qubit gates via quantum process tomography. We establish the suitability of these techniques for computation by preparing a four-qubit maximally entangled state and comparing the estimated state fidelity against the expected performance of the individual entangling gates. In addition, we prepare an eight-qubit register in all possible bitstring permutations and monitor the fidelity of a two-qubit gate across one pair of these qubits. Across all such permutations, an average fidelity of is observed. These results thus offer a path to a scalable architecture with high selectivity and low crosstalk.
Keywords
Cite
@article{arxiv.1706.06570,
title = {Demonstration of Universal Parametric Entangling Gates on a Multi-Qubit Lattice},
author = {M. Reagor and C. B. Osborn and N. Tezak and A. Staley and G. Prawiroatmodjo and M. Scheer and N. Alidoust and E. A. Sete and N. Didier and M. P. da Silva and E. Acala and J. Angeles and A. Bestwick and M. Block and B. Bloom and A. Bradley and C. Bui and S. Caldwell and L. Capelluto and R. Chilcott and J. Cordova and G. Crossman and M. Curtis and S. Deshpande and T. El Bouayadi and D. Girshovich and S. Hong and A. Hudson and P. Karalekas and K. Kuang and M. Lenihan and R. Manenti and T. Manning and J. Marshall and Y. Mohan and W. O'Brien and J. Otterbach and A. Papageorge and J. -P. Paquette and M. Pelstring and A. Polloreno and V. Rawat and C. A. Ryan and R. Renzas and N. Rubin and D. Russell and M. Rust and D. Scarabelli and M. Selvanayagam and R. Sinclair and R. Smith and M. Suska and T. -W. To and M. Vahidpour and N. Vodrahalli and T. Whyland and K. Yadav and W. Zeng and C. T. Rigetti},
journal= {arXiv preprint arXiv:1706.06570},
year = {2018}
}