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有机反铁磁体中的自旋电流产生。

Spin current generation in organic antiferromagnets.

机构信息

Waseda Institute for Advanced Study, Waseda University, Shinjuku, Tokyo, 169-8050, Japan.

Department of Physics, Hokkaido University, Sapporo, Hokkaido, 060-0810, Japan.

出版信息

Nat Commun. 2019 Sep 20;10(1):4305. doi: 10.1038/s41467-019-12229-y.

Abstract

Spin current-a flow of electron spins without a charge current-is an ideal information carrier free from Joule heating for electronic devices. The celebrated spin Hall effect, which arises from the relativistic spin-orbit coupling, enables us to generate and detect spin currents in inorganic materials and semiconductors, taking advantage of their constituent heavy atoms. In contrast, organic materials consisting of molecules with light elements have been believed to be unsuited for spin current generation. Here we show that a class of organic antiferromagnets with checker-plate type molecular arrangements can serve as a spin current generator by applying a thermal gradient or an electric field, even with vanishing spin-orbit coupling. Our findings provide another route to create a spin current distinct from the conventional spin Hall effect and open a new field of spintronics based on organic magnets having advantages of small spin scattering and long lifetime.

摘要

自旋电流是一种没有电荷电流的电子自旋流,它是一种理想的信息载体,可避免电子设备中的焦耳加热。著名的自旋霍尔效应源于相对论自旋轨道耦合,使我们能够在无机材料和半导体中产生和检测自旋电流,利用它们的重原子组成。相比之下,由轻元素分子组成的有机材料被认为不适合产生自旋电流。在这里,我们表明,一类具有棋盘式分子排列的有机反铁磁体可以通过施加热梯度或电场来充当自旋电流发生器,即使自旋轨道耦合为零。我们的发现提供了一种不同于传统自旋霍尔效应的产生自旋电流的新途径,并为基于具有小自旋散射和长寿命优势的有机磁体的自旋电子学开辟了一个新领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1190/6754401/40d7249ff1d6/41467_2019_12229_Fig1_HTML.jpg

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