Long-lived metastable-qubit memory

Xiaoyang Shi, Jasmine Sinanan-Singh, Kyle DeBry, Susanna L. Todaro, Isaac L. Chuang, John Chiaverini
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Abstract

Coherent storage of quantum information is crucial to many quantum technologies. Long coherence times have been demonstrated in trapped-ion qubits, typically using the hyperfine levels within the ground state of a single ion. However, recent research suggests qubits encoded in metastable states could provide architectural benefits for quantum information processing, such as the possibility of effective dual-species operation in a single-species system and erasure-error conversion for fault-tolerant quantum computing. Here we demonstrate long-lived encoding of a quantum state in the metastable states of a trapped ion. By sympathetically cooling with another ion of the same species and constantly monitoring for erasure errors, we demonstrate a coherence time of 136(42) seconds with a qubit encoded in the metastable $5D_{5/2}$ state of a single $^{137}$Ba$^+$ ion. In agreement with a model based on empirical results from dynamical-decoupling-based noise spectroscopy, we find that dephasing of the metastable levels is the dominant source of error once erasure errors are removed.
长寿命可变量子比特存储器
量子信息的相干存储对许多量子技术至关重要。困离子量子比特已经证明了较长的相干时间,通常使用的是单个离子基态内的超频级。然而,最近的研究表明,在蜕变态中编码的量子比特可以为量子信息处理提供架构上的优势,例如在单物种系统中进行有效的双物种操作和容错量子计算的擦除-错误转换的可能性。在这里,我们展示了在一个被困离子的蜕变态中对量子态的长寿命编码。通过与另一个同种离子协同冷却并持续监测擦除错误,我们证明了在单个 $^{137}$Ba$^+$ 离子的逸散 5D_{5/2}$ 态中编码的量子比特的相干时间为 136(42) 秒。与基于动态去耦噪声光谱学经验结果的模型相一致,我们发现一旦消除了擦除误差,瞬变水平的去相是误差的主要来源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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