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偶极三维多层人工自旋涡旋冰中的超强磁振子-磁振子耦合及手性自旋纹理控制

Ultrastrong magnon-magnon coupling and chiral spin-texture control in a dipolar 3D multilayered artificial spin-vortex ice.

作者信息

Dion Troy, Stenning Kilian D, Vanstone Alex, Holder Holly H, Sultana Rawnak, Alatteili Ghanem, Martinez Victoria, Kaffash Mojtaba Taghipour, Kimura Takashi, Oulton Rupert F, Branford Will R, Kurebayashi Hidekazu, Iacocca Ezio, Jungfleisch M Benjamin, Gartside Jack C

机构信息

Solid State Physics Laboratory, Kyushu University, Fukuoka, Japan.

Blackett Laboratory, Imperial College London, London, UK.

出版信息

Nat Commun. 2024 May 14;15(1):4077. doi: 10.1038/s41467-024-48080-z.

Abstract

Strongly-interacting nanomagnetic arrays are ideal systems for exploring reconfigurable magnonics. They provide huge microstate spaces and integrated solutions for storage and neuromorphic computing alongside GHz functionality. These systems may be broadly assessed by their range of reliably accessible states and the strength of magnon coupling phenomena and nonlinearities. Increasingly, nanomagnetic systems are expanding into three-dimensional architectures. This has enhanced the range of available magnetic microstates and functional behaviours, but engineering control over 3D states and dynamics remains challenging. Here, we introduce a 3D magnonic metamaterial composed from multilayered artificial spin ice nanoarrays. Comprising two magnetic layers separated by a non-magnetic spacer, each nanoisland may assume four macrospin or vortex states per magnetic layer. This creates a system with a rich 16 microstate space and intense static and dynamic dipolar magnetic coupling. The system exhibits a broad range of emergent phenomena driven by the strong inter-layer dipolar interaction, including ultrastrong magnon-magnon coupling with normalised coupling rates of , GHz mode shifts in zero applied field and chirality-control of magnetic vortex microstates with corresponding magnonic spectra.

摘要

强相互作用纳米磁体阵列是探索可重构磁子学的理想系统。它们为存储和神经形态计算提供了巨大的微观状态空间和集成解决方案,同时具备GHz级别的功能。这些系统可以通过其可靠可达状态的范围、磁子耦合现象的强度和非线性来进行广泛评估。纳米磁体系统正越来越多地扩展到三维架构中。这增加了可用磁微状态和功能行为的范围,但对三维状态和动力学的工程控制仍然具有挑战性。在这里,我们介绍一种由多层人工自旋冰纳米阵列组成的三维磁子超材料。它由两个由非磁性间隔层隔开的磁性层组成,每个纳米岛在每个磁性层中可以呈现四种宏观自旋或涡旋状态。这创造了一个具有丰富的16种微观状态空间以及强烈的静态和动态偶极磁耦合的系统。该系统表现出由强层间偶极相互作用驱动的广泛涌现现象,包括具有归一化耦合率的超强磁子 - 磁子耦合、零外场下的GHz模式偏移以及具有相应磁子光谱的磁涡旋微观状态的手性控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a327/11094080/2ba358cfd023/41467_2024_48080_Fig1_HTML.jpg

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