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Spin-Cat Qubit with Biased Noise in an Optical Tweezer Array

Quantum Physics 2026-03-03 v1 Atomic Physics

Abstract

Bias-tailored quantum error correcting codes (QECCs) offer a higher error threshold than standard QECCs and have the potential to achieve lower logical errors with less space overhead. The spin-cat qubit, encoded in a large nuclear spin-FF system, is a promising candidate for bias-tailored QECCs. Yet its feasibility is hindered by the difficulty of performing fast covariant SU(2) rotation with arbitrary rotation angles for nuclear spins and by a lack of noise characterization for gate operations in neutral atom platforms. Here we demonstrate single-qubit controls of 173Yb{}^{173}\mathrm{Yb} spin-cat qubits with nuclear spin I=5/2I=5/2 in an optical tweezer array. We implement a covariant SU(2) rotation and non-linear rotations by optical beams and achieve an averaged single-Clifford gate fidelity of 0.9615+50.961_{-5}^{+5}. The measurement of the coherence time and spin relaxation time shows that the idling error becomes increasingly biased toward dephasing errors as the magnitude of the encoded sublevel mF|m_F| increases. Furthermore, we benchmark the noise bias of rank-preserving gates on spin-cat qubits, demonstrating a finite bias of 1811+13218_{-11}^{+132}, in contrast to the case of the two-level system in 171Yb{}^{171}\mathrm{Yb}, which shows no bias within the experimental uncertainty. Our work demonstrates the feasibility of spin-cat qubits for realizing bias-tailored QECCs, paving the way for achieving hardware-efficient quantum error correction.

Keywords

Cite

@article{arxiv.2602.22883,
  title  = {Spin-Cat Qubit with Biased Noise in an Optical Tweezer Array},
  author = {Toshi Kusano and Kosuke Shibata and Chih-Han Yeh and Keito Saito and Yuma Nakamura and Rei Yokoyama and Takumi Kashimoto and Tetsushi Takano and Yosuke Takasu and Ryuji Takagi and Yoshiro Takahashi},
  journal= {arXiv preprint arXiv:2602.22883},
  year   = {2026}
}
R2 v1 2026-07-01T10:53:43.563Z