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Dissipative quantum error correction and application to quantum sensing with trapped ions

机译:耗散量子误差校正及其在被困离子量子感测中的应用

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摘要

Quantum-enhanced measurements hold the promise to improve high-precision sensing ranging from the definition of time standards to the determination of fundamental constants of nature. However, quantum sensors lose their sensitivity in the presence of noise. To protect them, the use of quantum error-correcting codes has been proposed. Trapped ions are an excellent technological platform for both quantum sensing and quantum error correction. Here we present a quantum error correction scheme that harnesses dissipation to stabilize a trapped-ion qubit. In our approach, always-on couplings to an engineered environment protect the qubit against spin-flips or phase-flips. Our dissipative error correction scheme operates in a continuous manner without the need to perform measurements or feedback operations. We show that the resulting enhanced coherence time translates into a significantly enhanced precision for quantum measurements. Our work constitutes a stepping stone towards the paradigm of self-correcting quantum information processing.
机译:从时间标准的定义到自然界基本常数的确定,量子增强测量有望改善高精度传感。但是,量子传感器在存在噪声的情况下会失去灵敏度。为了保护它们,已经提出使用量子纠错码。捕获离子是用于量子感测和量子误差校正的出色技术平台。在这里,我们提出了一种量子误差校正方案,该方案利用耗散来稳定离子阱量子位。在我们的方法中,始终接通的耦合到工程环境可以保护量子位免受自旋翻转或相位翻转的影响。我们的耗散纠错方案以连续方式运行,而无需执行测量或反馈操作。我们表明,由此产生的增强的相干时间转化为量子测量的精度大大提高。我们的工作构成了自我校正量子信息处理范式的垫脚石。

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