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一种容错的可寻址自旋量子位在天然硅量子点中。

A fault-tolerant addressable spin qubit in a natural silicon quantum dot.

机构信息

RIKEN, Center for Emergent Matter Science, Wako-shi, Saitama 351-0198, Japan.

Department of Physical Electronics and Quantum Nanoelectronics Research Center, Tokyo Institute of Technology, O-okayama, Meguro-ku, Tokyo 152-8552, Japan.

出版信息

Sci Adv. 2016 Aug 12;2(8):e1600694. doi: 10.1126/sciadv.1600694. eCollection 2016 Aug.

DOI:10.1126/sciadv.1600694
PMID:27536725
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4982751/
Abstract

Fault-tolerant quantum computing requires high-fidelity qubits. This has been achieved in various solid-state systems, including isotopically purified silicon, but is yet to be accomplished in industry-standard natural (unpurified) silicon, mainly as a result of the dephasing caused by residual nuclear spins. This high fidelity can be achieved by speeding up the qubit operation and/or prolonging the dephasing time, that is, increasing the Rabi oscillation quality factor Q (the Rabi oscillation decay time divided by the π rotation time). In isotopically purified silicon quantum dots, only the second approach has been used, leaving the qubit operation slow. We apply the first approach to demonstrate an addressable fault-tolerant qubit using a natural silicon double quantum dot with a micromagnet that is optimally designed for fast spin control. This optimized design allows access to Rabi frequencies up to 35 MHz, which is two orders of magnitude greater than that achieved in previous studies. We find the optimum Q = 140 in such high-frequency range at a Rabi frequency of 10 MHz. This leads to a qubit fidelity of 99.6% measured via randomized benchmarking, which is the highest reported for natural silicon qubits and comparable to that obtained in isotopically purified silicon quantum dot-based qubits. This result can inspire contributions to quantum computing from industrial communities.

摘要

容错量子计算需要高保真度的量子比特。这已经在各种固态系统中实现,包括同位素纯化硅,但尚未在工业标准的天然(未纯化)硅中实现,主要是由于残余核自旋引起的退相干。通过加快量子比特操作和/或延长退相干时间(即增加拉比振荡品质因数 Q(拉比振荡衰减时间除以π旋转时间))可以实现这种高保真度。在同位素纯化硅量子点中,仅使用了第二种方法,从而使量子比特操作变得缓慢。我们应用第一种方法,使用经过优化设计用于快速自旋控制的微磁体演示了一种可寻址容错量子比特。这种优化设计允许访问高达 35 MHz 的拉比频率,比以前的研究中实现的频率高两个数量级。我们在 10 MHz 的拉比频率下发现了这种高频范围内的最佳 Q=140。这导致通过随机基准测试测量的量子比特保真度为 99.6%,这是天然硅量子比特中报告的最高值,与基于同位素纯化硅量子点的量子比特相当。这一结果可以激发工业界对量子计算的贡献。

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