Optimal control of two qubits via a single cavity drive in circuit quantum electrodynamics

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Abstract

Optimization of the fidelity of control operations is of critical importance in the pursuit of fault-tolerant quantum computation. We apply optimal control techniques to demonstrate that a single drive via the cavity in circuit quantum electrodynamics can implement a high-fidelity two-qubit all-microwave gate that directly entangles the qubits via the mutual qubit-cavity couplings. This is performed by driving at one of the qubits' frequencies which generates a conditional two-qubit gate, but will also generate other spurious interactions. These optimal control techniques are used to find pulse shapes that can perform this two-qubit gate with high fidelity, robust against errors in the system parameters. The simulations were all performed using experimentally relevant parameters and constraints.

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Allen, J. L., Kosut, R., Joo, J., Leek, P., & Ginossar, E. (2017). Optimal control of two qubits via a single cavity drive in circuit quantum electrodynamics. Physical Review A, 95(4). https://doi.org/10.1103/PhysRevA.95.042325

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