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Non-Gaussian noise spectroscopy with a superconducting qubit sensor

机译:具有超导量子位传感器的非高斯噪声光谱

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摘要

Accurate characterization of the noise influencing a quantum system of interest has far-reaching implications across quantum science, ranging from microscopic modeling of decoherence dynamics to noise-optimized quantum control. While the assumption that noise obeys Gaussian statistics is commonly employed, noise is generically non-Gaussian in nature. In particular, the Gaussian approximation breaks down whenever a qubit is strongly coupled to discrete noise sources or has a non-linear response to the environmental degrees of freedom. Thus, in order to both scrutinize the applicability of the Gaussian assumption and capture distinctive non-Gaussian signatures, a tool for characterizing non-Gaussian noise is essential. Here, we experimentally validate a quantum control protocol which, in addition to the spectrum, reconstructs the leading higher-order spectrum of engineered non-Gaussian dephasing noise using a superconducting qubit as a sensor. This first experimental demonstration of non-Gaussian noise spectroscopy represents a major step toward demonstrating a complete spectral estimation toolbox for quantum devices.
机译:影响感兴趣的量子系统的噪声的准确表征在整个量子科学中具有深远的意义,从退相干动力学的微观建模到噪声优化的量子控制。尽管通常采用噪声服从高斯统计的假设,但噪声本质上通常是非高斯的。特别是,当量子位与离散噪声源强烈耦合或对环境自由度具有非线性响应时,高斯近似就会分解。因此,为了既检查高斯假设的适用性又捕获独特的非高斯签名,用于表征非高斯噪声的工具是必不可少的。在这里,我们通过实验验证了一种量子控制协议,该协议除了频谱之外,还使用超导量子位作为传感器来重构工程化非高斯相移噪声的领先高阶频谱。非高斯噪声光谱学的第一个实验演示代表了朝展示用于量子设备的完整光谱估算工具箱的重要一步。

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