Controlled-Controlled-Phase Gates for Superconducting Qubits Mediated by a Shared Tunable Coupler
Niklas J. Glaser, Federico Roy, Stefan Filipp

TL;DR
This paper demonstrates a method to implement high-fidelity controlled-phase and controlled-controlled-phase gates in superconducting qubits using a tunable coupler, enhancing multi-qubit entanglement efficiency.
Contribution
It introduces a novel gate protocol utilizing a shared tunable coupler to directly control multi-qubit interactions in superconducting circuits.
Findings
Fidelities around 99% achieved in simulations.
Gate times below 300 ns.
Effective control of multi-qubit phases using adiabatic flux pulses.
Abstract
Applications for noisy intermediate-scale quantum computing devices rely on the efficient entanglement of many qubits to reach a potential quantum advantage. Although entanglement is typically generated using two-qubit gates, direct control of strong multi-qubit interactions can improve the efficiency of the process. Here, we investigate a system of three superconducting transmon-type qubits coupled via a single flux-tunable coupler. Tuning the frequency of the coupler by adiabatic flux pulses enables us to control the conditional energy shifts between the qubits and directly realize multi-qubit interactions. To accurately adjust the resulting controlled relative phases, we describe a gate protocol involving refocusing pulses and adjustable interaction times. This enables the implementation of the full family of pairwise controlled-phase (CPHASE) and controlled-controlled-phase…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Quantum and electron transport phenomena · Quantum Information and Cryptography
