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A quantum-dot spin qubit with coherence limited by charge noise and fidelity higher than 99.9%

机译:Quantum-Dot SpinQubit,具有相干电荷噪声和保真度高于99.9%的一致性

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摘要

The isolation of qubits from noise sources, such as surrounding nuclear spins and spin-electric susceptibility(1-4), has enabled extensions of quantum coherence times in recent pivotal advances towards the concrete implementation of spin-based quantum computation. In fact, the possibility of achieving enhanced quantum coherence has been substantially doubted for nanostructures due to the characteristic high degree of background charge fluctuations(5-7). Still, a sizeable spin-electric coupling will be needed in realistic multiple-qubit systems to address single-spin and spin-spin manipulations(8-10). Here, we realize a single-electron spin qubit with an isotopically enriched phase coherence time (20 mu s)(11,12) and fast electrical control speed (up to 30 MHz) mediated by extrinsic spin-electric coupling. Using rapid spin rotations, we reveal that the free-evolution dephasing is caused by charge noise-rather than conventional magnetic noise-as highlighted by a 1/f spectrum extended over seven decades of frequency. The qubit exhibits superior performance with single-qubit gate fidelities exceeding 99.9% on average, offering a promising route to large-scale spin-qubit systems with fault-tolerant controllability.
机译:诸如周围核旋转和旋转电动敏感性(1-4)的噪声源的隔离具有使量子相干时间的延伸,以近期枢转朝向基于自旋的量子计算的具体实现的枢转进程。事实上,由于特征高度的背景电量波动(5-7),纳米结构已经毫无疑问地实现了增强量子相干性的可能性。仍然,在现实的多个Qubit系统中需要相当大的旋转电耦合,以解决单旋和旋转操纵(8-10)。这里,我们通过外本旋转电耦合介导的具有同位素富集的相干时间(20μS)(11,12)和快速电控制速度(高达30MHz)的单电子纺丝Qubit。使用快速旋转旋转,我们揭示了自由演进噪声引起的 - 而不是传统的磁噪声 - 如1 / f频率突出显示超过七十年的频率。 Qubit呈现出优越的性能,平均单QUBBET门保护度超过99.9%,提供了具有容错可控性容错可控性的大型自旋QUBit系统的有希望的路线。

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