High-Fidelity Spin Qubit Shuttling via Large Spin-Orbit Interactions

Stefano Bosco, Ji Zou, Daniel Loss
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Abstract

Shuttling spins with high fidelity is a key requirement to scale up semiconducting quantum computers, enabling qubit entanglement over large distances and favoring the integration of control electronics on-chip. To decouple the spin from the unavoidable charge noise, state-of-the-art spin shuttlers try to minimize the inhomogeneity of the Zeeman field. However, this decoupling is challenging in otherwise promising quantum computing platforms such as hole spin qubits in silicon and germanium, characterized by a large spin-orbit interaction and an electrically tunable qubit frequency. In this work, we show that, surprisingly, the large inhomogeneity of the Zeeman field stabilizes the coherence of a moving spin state, thus also enabling high-fidelity shuttling in these systems. We relate this enhancement in fidelity to the deterministic dynamics of the spin that filters out the dominant low-frequency contributions of the charge noise. By simulating several different scenarios and noise sources, we show that this is a robust phenomenon generally occurring at large field inhomogeneity. By appropriately adjusting the motion of the quantum dot, we also design realistic protocols enabling faster and more coherent spin shuttling. Our findings are generally applicable to a wide range of setups and could pave the way toward large-scale quantum processors.

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通过大自旋轨道相互作用实现高保真自旋质子穿梭
高保真地穿梭自旋是扩大半导体量子计算机规模的关键要求,可实现大距离的量子比特纠缠,有利于在芯片上集成控制电子器件。为了将自旋与不可避免的电荷噪声去耦,最先进的自旋穿梭器试图将泽曼场的不均匀性降到最低。然而,对于硅和锗中的空穴自旋量子比特等前景广阔的量子计算平台来说,这种去耦具有挑战性,因为这些平台的特点是具有较大的自旋轨道相互作用和电可调量子比特频率。在这项工作中,我们令人惊讶地发现,泽曼场的巨大不均匀性稳定了移动自旋态的相干性,从而使这些系统中的高保真穿梭成为可能。我们将这种保真度的提高与自旋的确定性动力学联系起来,后者过滤掉了电荷噪声的主要低频贡献。通过模拟几种不同的情况和噪声源,我们证明了这是一种在大场不均匀性条件下普遍存在的稳健现象。通过适当调整量子点的运动,我们还设计出了能够实现更快、更连贯的自旋穿梭的现实协议。我们的发现普遍适用于各种设置,并能为大规模量子处理器铺平道路。
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