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Dark spin-cats as biased qubits

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arxiv 2408.04421 v2 pith:G246NLI6 submitted 2024-08-08 quant-ph

classification quant-ph
keywords darkspin-catbiasedgroundmanifoldnoisequbitstate
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abstract

We present a biased atomic qubit, universally implementable across all atomic platforms, encoded as a `spin-cat' within ground state Zeeman levels. The key characteristic of our configuration is the coupling of the ground state spin manifold of size $F_g \gg 1$ to an excited Zeeman spin manifold of size $F_e = F_g - 1$ using light. This coupling results in eigenstates of the driven atom that include exactly two dark states in the ground state manifold, which are decoupled from light and immune to spontaneous emission from the excited states. These dark states constitute the `spin-cat', leading to the designation `dark spin-cat'. We demonstrate that under strong Rabi drive and for large $F_g$, the `dark spin-cat' is autonomously stabilized against common noise sources and encodes a qubit with significantly biased noise. Specifically, the bit-flip error rate decreases exponentially with $F_g$ relative to the dephasing rate. We provide an analysis of dark spin-cats, their robustness to noise, and discuss bias-preserving single qubit and entangling gates, exemplified on a Rydberg tweezer platform.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The Magic Scroll: Leveraging biased noise to improve magic state cultivation in register-based architectures

    quant-ph 2026-08 conditional novelty 6.0 of 10

    The Magic Scroll protocol uses biased noise and two-qubit registers to reduce the cost of producing high-fidelity magic T states by about 3x, reaching error rates near 1e-15 when combined with distillation.

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