Pulsed-gate spectroscopy of single-electron spin states in bilayer graphene quantum dots

L. Banszerus, K. Hecker, E. Icking, S. Trellenkamp, F. Lentz, D. Neumaier, Kenji Watanabe, T. Taniguchi, C. Volk, C. Stampfer
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引用次数: 12

Abstract

Graphene and bilayer graphene quantum dots are promising hosts for spin qubits with long coherence times. Although recent technological improvements make it possible to confine single electrons electrostatically in bilayer graphene quantum dots, and their spin and valley texture of the single particle spectrum has been studied in detail, their relaxation dynamics remains still unexplored. Here, we report on transport through a high-frequency gate controlled single-electron bilayer graphene quantum dot. By transient current spectroscopy of single-electron spin states, we extract a lower bound of the spin relaxation time of 0.5~$\mu$s. This result represents an important step towards the investigation of spin coherence times in graphene-based quantum dots and the implementation of spin-qubits.
双层石墨烯量子点中单电子自旋态的脉冲门光谱
石墨烯和双层石墨烯量子点是具有长相干时间的自旋量子比特的有希望的宿主。尽管近年来的技术进步使得在双层石墨烯量子点中静电限制单电子成为可能,并且已经详细研究了单粒子谱的自旋和谷织构,但它们的弛豫动力学仍然未被探索。在这里,我们报告了通过高频门控制的单电子双层石墨烯量子点的传输。通过单电子自旋态的瞬态电流谱,我们得到了自旋弛豫时间0.5~$\mu$s的下界。这一结果代表了研究石墨烯基量子点的自旋相干时间和实现自旋量子比特的重要一步。
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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