论文标题

超过光子模式的观众量子台,并连续测量降低海森堡的噪声

Surpassing spectator qubits with photonic modes and continuous measurement for Heisenberg-limited noise mitigation

论文作者

Lingenfelter, Andrew, Clerk, Aashish A.

论文摘要

噪声是对脆弱量子状态的创造和保存的挑战。最近的工作表明,可以利用空间噪声相关性作为减少噪声的资源,通过使用观众量子台来测量环境噪声。在这项工作中,我们将此概念从观众量楼推广到观众模式:一种光子模式,该模式连续测量了空间相关的经典驱动噪声,并将连续的校正驱动器应用于可频率的数据量。我们的分析表明,通过使用许多光子状态,观众模式可以超过许多限制观众量子方法方法的量子测量约束。我们还发现,即使对于白噪声,长期的数据量子量表也可以被任意抑制。此外,使用挤压(参数)驱动器,观众模式方法中的误差可以在使用的光子数量中显示出Heisenberg限制的缩放。我们还表明,可以使用工程耗散来完全自主实施观众模式降低噪声。在这种情况下,不需要明确的测量或处理经典测量记录。我们的作品将观众模式建立为降解噪声的潜在强大替代方案。

Noise is an ever-present challenge to the creation and preservation of fragile quantum states. Recent work suggests that spatial noise correlations can be harnessed as a resource for noise mitigation via the use of spectator qubits to measure environmental noise. In this work we generalize this concept from spectator qubits to a spectator mode: a photonic mode which continuously measures spatially correlated classical dephasing noise and applies a continuous correction drive to frequency-tunable data qubits. Our analysis shows that by using many photon states, spectator modes can surpass many of the quantum measurement constraints that limit spectator qubit approaches. We also find that long-time data qubit dephasing can be arbitrarily suppressed, even for white noise dephasing. Further, using a squeezing (parametric) drive, the error in the spectator mode approach can exhibit Heisenberg-limited scaling in the number of photons used. We also show that spectator mode noise mitigation can be implemented completely autonomously using engineered dissipation. In this case no explicit measurement or processing of a classical measurement record is needed. Our work establishes spectator modes as a potentially powerful alternative to spectator qubits for noise mitigation.

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