High-performance conditional-driving gate for Kerr parametric oscillator qubits
- URL: http://arxiv.org/abs/2410.00552v1
- Date: Tue, 1 Oct 2024 09:58:52 GMT
- Title: High-performance conditional-driving gate for Kerr parametric oscillator qubits
- Authors: Hiroomi Chono, Hayato Goto,
- Abstract summary: We show that an AC-Zeeman shift due to the flux pulse for the gate operation largely affects the gate performance.
We propose a method to cancel this undesirable effect.
We numerically demonstrate a conditional-driving gate with average fidelity exceeding 99.9$%$ twice faster than that without the proposed method.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Kerr parametric oscillators (KPOs), two-photon driven Kerr-nonlinear resonators, can stably hold coherent states with opposite-sign amplitudes and are promising devices for quantum computing. Recently, we have theoretically proposed a two-qubit gate $R_{zz}$ for highly detuned KPOs and called it a conditional-driving gate [Chono $\textit{et al}$., Phys. Rev. Res. $\textbf{4}$, 043054 (2022)]. In this study, analyzing its superconducting-circuit model and deriving a corresponding static model, we find that an AC-Zeeman shift due to the flux pulse for the gate operation largely affects the gate performance. This effect becomes a more aggravating factor with shorter gate times, leading to an increase in the error rate. We thus propose a method to cancel this undesirable effect. Furthermore, through the use of shortcuts to adiabaticity and the optimization of flux pulses, we numerically demonstrate a conditional-driving gate with average fidelity exceeding 99.9$\%$ twice faster than that without the proposed method.
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