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声致相干自旋俘获

Acoustically induced coherent spin trapping.

作者信息

Hernández-Mínguez Alberto, Poshakinskiy Alexander V, Hollenbach Michael, Santos Paulo V, Astakhov Georgy V

机构信息

Paul-Drude-Institut für Festkörperelektronik, Leibniz-Institut im Forschungsverbund Berlin e.V., Hausvogteiplatz 5-7, 10117 Berlin, Germany.

Ioffe Physical-Technical Institute, Russian Academy of Sciences, 194021 St. Petersburg, Russia.

出版信息

Sci Adv. 2021 Oct 29;7(44):eabj5030. doi: 10.1126/sciadv.abj5030.

Abstract

Spin centers are promising qubits for quantum technologies. Here, we show that the acoustic manipulation of spin qubits in their electronic excited state provides an approach for coherent spin control inaccessible so far. We demonstrate a giant interaction between the strain field of a surface acoustic wave (SAW) and the excited-state spin of silicon vacancies in silicon carbide, which is about two orders of magnitude stronger than in the ground state. The simultaneous spin driving in the ground and excited states with the same SAW leads to the trapping of the spin along a direction given by the frequency detuning from the corresponding spin resonances. The coherence of the spin-trapped states becomes only limited by relaxation processes intrinsic to the ground state. The coherent acoustic manipulation of spins in the ground and excited state provides new opportunities for efficient on-chip quantum information protocols and coherent sensing.

摘要

自旋中心是量子技术中很有前景的量子比特。在此,我们表明对处于电子激发态的自旋量子比特进行声学操控提供了一种迄今无法实现的相干自旋控制方法。我们证明了表面声波(SAW)的应变场与碳化硅中硅空位的激发态自旋之间存在巨大相互作用,这比基态时的相互作用强约两个数量级。用同一表面声波同时在基态和激发态驱动自旋会导致自旋沿由与相应自旋共振的频率失谐所确定的方向被俘获。自旋被俘获态的相干性仅受限于基态固有的弛豫过程。对基态和激发态自旋进行相干声学操控为高效的片上量子信息协议和相干传感提供了新机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be4a/8555898/ff2df38b9692/sciadv.abj5030-f1.jpg

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