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手性超导体中的巨自旋极化和一对反平行自旋。

Giant spin polarization and a pair of antiparallel spins in a chiral superconductor.

作者信息

Nakajima R, Hirobe D, Kawaguchi G, Nabei Y, Sato T, Narushima T, Okamoto H, Yamamoto H M

机构信息

Institute for Molecular Science, Myodaiji, Okazaki, Japan.

The Graduate University for Advanced Studies, Myodaiji, Okazaki, Japan.

出版信息

Nature. 2023 Jan;613(7944):479-484. doi: 10.1038/s41586-022-05589-x. Epub 2023 Jan 18.

Abstract

Chiral molecules can exhibit spin-selective charge emission, which is known as chirality-induced spin selectivity. Despite the constituent light elements of the molecules, their spin polarization can approach or even exceed that of typical ferromagnets. This powerful capability may lead to applications in the chiral spintronics field. Although the origin of spin selectivity is elusive, two microscopic phenomena have been suggested based on experimental results: effective enhancement of spin-orbit interactions and chirality represented by a pair of oppositely polarized spins. However, the hypotheses remain to be verified. Here we report the simultaneous observation of these two phenomena in an organic chiral superconductor by magnetoresistance measurements in the vicinity of the superconducting transition temperature. A pair of oppositely polarized spins is demonstrated by spatially mapping the spin polarity in an electric alternating current excitation. The obtained spin polarization exceeds that of the Edelstein effect by several orders of magnitude, which indicates an effective enhancement of the spin-orbit interaction. Our results demonstrate a solid-state analogue of spin accumulations assumed for chiral molecules, and may provide clues to the origin of their molecular counterparts. In addition, the innovative capability of spin-current sourcing will invigorate superconducting spintronics research.

摘要

手性分子能够表现出自旋选择性电荷发射,这被称为手性诱导自旋选择性。尽管这些分子由轻元素组成,但其自旋极化能够接近甚至超过典型铁磁体的自旋极化。这种强大的能力可能会在 chiral spintronics 领域带来应用。虽然自旋选择性的起源尚不清楚,但基于实验结果提出了两种微观现象:自旋 - 轨道相互作用的有效增强以及由一对相反极化自旋所代表的手性。然而,这些假设仍有待验证。在此,我们报告通过在超导转变温度附近进行磁阻测量,在一种有机手性超导体中同时观测到了这两种现象。通过在交流电流激发下对自旋极性进行空间映射,证明了一对相反极化的自旋。所获得的自旋极化比埃德尔斯坦效应的自旋极化高出几个数量级,这表明自旋 - 轨道相互作用得到了有效增强。我们的结果展示了一种假设用于手性分子的自旋积累的固态类似物,并可能为其分子对应物的起源提供线索。此外,自旋电流源的创新能力将推动超导自旋电子学研究。

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