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Analytical modeling of parametrically-modulated transmon qubits
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Building a scalable quantum computer requires developing appropriate models to understand and verify its complex quantum dynamics. We focus on superconducting quantum processors based on transmons for which full numerical simulations are already challenging at the level of qubytes. It is thus highly desirable to develop accurate methods of modeling qubit networks that do not rely solely on numerical computations. Using systematic perturbation theory to large orders in the transmon regime, we derive precise analytic expressions of the transmon parameters. We apply our results to the case of parametrically-modulated transmons to study recently-implemented parametrically-activated entangling gates.
Forward citations
Cited by 2 Pith papers
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Methods for Measuring Magnetic Flux Crosstalk Between Tunable Transmons
Three direct measurements of DC and AC flux crosstalk between tunable transmons are presented, along with a derived relation between AC crosstalk and parametric CZ gate infidelity.
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Lifetime renormalization of driven weakly anharmonic superconducting qubits: II. The readout problem
Drive-activated number-nonconserving Josephson terms induce a correlated qubit-cavity relaxation channel that increases the qubit decay rate approximately linearly with the readout cavity photon number.
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