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室温下石墨中超长的 100ns 自旋弛豫时间。

Ultralong 100 ns spin relaxation time in graphite at room temperature.

机构信息

Stavropoulos Center for Complex Quantum Matter, Department of Physics and Astronomy, University of Notre Dame, Notre Dame, IN, 46556, USA.

Institute for Solid State Physics and Optics, Wigner Research Centre for Physics, Budapest, H-1525, Hungary.

出版信息

Nat Commun. 2023 May 17;14(1):2831. doi: 10.1038/s41467-023-38288-w.

Abstract

Graphite has been intensively studied, yet its electron spins dynamics remains an unresolved problem even 70 years after the first experiments. The central quantities, the longitudinal (T) and transverse (T) relaxation times were postulated to be equal, mirroring standard metals, but T has never been measured for graphite. Here, based on a detailed band structure calculation including spin-orbit coupling, we predict an unexpected behavior of the relaxation times. We find, based on saturation ESR measurements, that T is markedly different from T. Spins injected with perpendicular polarization with respect to the graphene plane have an extraordinarily long lifetime of 100 ns at room temperature. This is ten times more than in the best graphene samples. The spin diffusion length across graphite planes is thus expected to be ultralong, on the scale of ~ 70 μm, suggesting that thin films of graphite - or multilayer AB graphene stacks - can be excellent platforms for spintronics applications compatible with 2D van der Waals technologies. Finally, we provide a qualitative account of the observed spin relaxation based on the anisotropic spin admixture of the Bloch states in graphite obtained from density functional theory calculations.

摘要

石墨已被广泛研究,但自首次实验以来 70 年过去了,其电子自旋动力学仍然是一个悬而未决的问题。纵向(T)和横向(T)弛豫时间被假定为相等,反映了标准金属的性质,但从未有人测量过石墨的 T。在这里,我们基于包括自旋轨道耦合在内的详细能带结构计算,预测了弛豫时间的意外行为。我们发现,基于饱和 ESR 测量,T 明显不同于 T。相对于石墨烯平面垂直极化注入的自旋具有非凡的长寿命,在室温下为 100 ns。这是在最佳石墨烯样品中的十倍。因此,穿过石墨平面的自旋扩散长度预计会非常长,在~70μm 的量级,这表明石墨的薄膜或多层 AB 堆叠石墨烯可以成为与 2D 范德华技术兼容的自旋电子学应用的优秀平台。最后,我们基于从密度泛函理论计算中获得的石墨 Bloch 态的各向异性自旋混合,对观察到的自旋弛豫提供了定性解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae26/10192359/afe6f5d5f29b/41467_2023_38288_Fig1_HTML.jpg

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