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arXiv · 2604.13363

Scalable Fluxonium Quantum Processors via Tunable-Coupler Architecture

Abstract

Superconducting quantum processors have largely converged on transmon-based architectures, while alternative qubit modalities with intrinsic error protection have lacked a demonstrated path to scalable system integration. In particular, although tunable-coupler-mediated interactions have been validated for small fluxonium systems, it remains unclear whether such designs can be scaled to a multi-qubit lattice. Here, we establish a scalable fluxonium processor architecture based on a modular qubit-coupler unit cell engineered to suppress residual interactions and spectator errors in a many-qubit lattice. The system enables parallel single-qubit gate fidelities approaching 99.99% and two-qubit CZ gate fidelities around 99%. With an optimized gate duration of 32 ns, the best CZ gate fidelity reaches 99.9%. We further validate this architecture in a 22-qubit processor based on the same configuration, where parallel operations enable the deterministic generation of Greenberger-Horne-Zeilinger states involving up to 10 qubits. Together, these results demonstrate that the fluxonium-tunable-coupler unit cell composes without emergent interaction pathologies and establish fluxonium as a scalable superconducting qubit platform.

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Ze Zhan, Zishuo Li, Fei Wang, Wangwei Lan, Xianchuang Pan, Liang Xiang, Xu Dou, Ran Gao, Guicheng Gong, Yanbo Guo, Quan Guan, Lijuan Hu, Ruizhi Hu, Honghong Ji, Lijing Jin, Yongyue Jin, Chengyao Li, Kannan Lu, Lu Ma, Xizheng Ma, Hongcheng Wang, Jiahui Wang, Huijuan Zhan, Tao Zhou, Xing Zhu, Chunqing Deng, Tenghui Wang. 2026-04-15. Scalable Fluxonium Quantum Processors via Tunable-Coupler Architecture. https://arxiv.org/abs/2604.13363

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