English

Native approach to controlled-Z gates in inductively coupled fluxonium qubits

Quantum Physics 2025-05-08 v1

Abstract

The fluxonium qubits have emerged as a promising platform for gate-based quantum information processing. However, their extraordinary protection against charge fluctuations comes at a cost: when coupled capacitively, the qubit-qubit interactions are restricted to XX-interactions. Consequently, effective XX- or XZ-interactions are only constructed either by temporarily populating higher-energy states, or by exploiting perturbative effects under microwave driving. Instead, we propose and demonstrate an inductive coupling scheme, which offers a wide selection of native qubit-qubit interactions for fluxonium. In particular, we leverage a built-in, flux-controlled ZZ-interaction to perform qubit entanglement. To combat the increased flux-noise-induced dephasing away from the flux-insensitive position, we use a continuous version of the dynamical decoupling scheme to perform noise filtering. Combining these, we demonstrate a 20 ns controlled-Z (CZ) gate with a mean fidelity of 99.53%. More than confirming the efficacy of our gate scheme, this high-fidelity result also reveals a promising but rarely explored parameter space uniquely suitable for gate operations between fluxonium qubits.

Keywords

Cite

@article{arxiv.2308.16040,
  title  = {Native approach to controlled-Z gates in inductively coupled fluxonium qubits},
  author = {Xizheng Ma and Gengyan Zhang and Feng Wu and Feng Bao and Xu Chang and Jianjun Chen and Hao Deng and Ran Gao and Xun Gao and Lijuan Hu and Honghong Ji and Hsiang-Sheng Ku and Kannan Lu and Lu Ma and Liyong Mao and Zhijun Song and Hantao Sun and Chengchun Tang and Fei Wang and Hongcheng Wang and Tenghui Wang and Tian Xia and Make Ying and Huijuan Zhan and Tao Zhou and Mengyu Zhu and Qingbin Zhu and Yaoyun Shi and Hui-Hai Zhao and Chunqing Deng},
  journal= {arXiv preprint arXiv:2308.16040},
  year   = {2025}
}