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分离铁磁体之间的电致角动量流

Electrically Induced Angular Momentum Flow between Separated Ferromagnets.

作者信息

Schlitz Richard, Grammer Matthias, Wimmer Tobias, Gückelhorn Janine, Flacke Luis, Goennenwein Sebastian T B, Gross Rudolf, Huebl Hans, Kamra Akashdeep, Althammer Matthias

机构信息

Department of Materials, ETH Zürich, 8093 Zürich, Switzerland.

Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften, 85748 Garching, Germany.

出版信息

Phys Rev Lett. 2024 Jun 21;132(25):256701. doi: 10.1103/PhysRevLett.132.256701.

Abstract

Converting angular momentum between different degrees of freedom within a magnetic material results from a dynamic interplay between electrons, magnons, and phonons. This interplay is pivotal to implementing spintronic device concepts that rely on spin angular momentum transport. We establish a new concept for long-range angular momentum transport that further allows us to address and isolate the magnonic contribution to angular momentum transport in a nanostructured metallic ferromagnet. To this end, we electrically excite and detect spin transport between two parallel and electrically insulated ferromagnetic metal strips on top of a diamagnetic substrate. Charge-to-spin current conversion within the ferromagnetic strip generates electronic spin angular momentum that is transferred to magnons via electron-magnon coupling. We observe a finite angular momentum flow to the second ferromagnetic strip across a diamagnetic substrate over micron distances, which is electrically detected in the second strip by the inverse charge-to-spin current conversion process. We discuss phononic and dipolar interactions as the likely cause to transfer angular momentum between the two strips. Moreover, our Letter provides the experimental basis to separate the electronic and magnonic spin transport and thereby paves the way towards magnonic device concepts that do not rely on magnetic insulators.

摘要

磁性材料中不同自由度之间的角动量转换源于电子、磁振子和声子之间的动态相互作用。这种相互作用对于实现依赖于自旋角动量传输的自旋电子器件概念至关重要。我们建立了一种远程角动量传输的新概念,这使我们能够进一步研究并分离纳米结构金属铁磁体中磁振子对角动量传输的贡献。为此,我们在抗磁衬底上对两个平行且电绝缘的铁磁金属条之间的自旋传输进行电激发和检测。铁磁条内的电荷到自旋电流转换产生电子自旋角动量,该角动量通过电子 - 磁振子耦合转移到磁振子。我们观察到在微米距离上,有有限的角动量流通过抗磁衬底流向第二个铁磁条,这在第二个铁磁条中通过反向电荷到自旋电流转换过程进行电检测。我们讨论了声子和偶极相互作用,认为它们是在两个条之间转移角动量的可能原因。此外,我们的论文为分离电子和磁振子自旋传输提供了实验基础,从而为不依赖磁绝缘体的磁振子器件概念铺平了道路。

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