English

Scalable native multiqubit gates via engineered noncomputational-state interactions in superconducting fluxonium qubits

Quantum Physics 2026-01-26 v2

Abstract

Native multiqubit gates could be essential for bridging the gap from current noisy devices to future utility-scale quantum computers, as they can substantially reduce circuit depth for near-term applications on noisy devices and may also lower the physical overhead of fault-tolerant quantum computation. Here we introduce a scalable protocol for implementing native multi-controlled gates on fluxonium qubits, supporting an arbitrary number of control qubits (N>1N > 1) while remaining compatible with existing single- and two-qubit gate realizations. Our approach leverages engineered interactions in noncomputational state manifolds to enable qubit-state selective transitions, which is activated for the direct implementation of (CN)Z(C^{\otimes N})Z gates. We show that in square lattices with fluxonium qubits, CCZCCZ, CCCZCCCZ, and CCCCZCCCCZ gates with errors around 0.01 (0.001) are achievable, with gate lengths of 50(100)ns50\,(100)\,\text{ns}, 100(250)ns100\,(250)\,\text{ns}, and 150(300)ns150\,(300)\,\text{ns}, respectively. Looking forward, integrating these native multi-controlled gates with primitive single- and two-qubit gate sets within a single quantum processor could significantly enhance flexibility in circuit synthesis and offer a promising alternative pathway toward utility-scale quantum computing.

Keywords

Cite

@article{arxiv.2507.18984,
  title  = {Scalable native multiqubit gates via engineered noncomputational-state interactions in superconducting fluxonium qubits},
  author = {Peng Zhao and Peng Xu and Zheng-Yuan Xue},
  journal= {arXiv preprint arXiv:2507.18984},
  year   = {2026}
}

Comments

12 pages, 10 figures

R2 v1 2026-07-01T04:18:17.763Z