钇铁石榴石
材料科学
磁性
纳米尺度
纳米柱
光电子学
激光器
光子学
光子晶体
各向异性
纳米技术
磁各向异性
纳米光刻
薄膜
无定形固体
铁磁性
凝聚态物理
垂直的
脉冲激光沉积
磁畴
钇
体积热力学
纳米结构
作者
Valerio Levati,Matteo Vitali,Andrea Del Giacco,Nicola Pellizzi,Raffaele Silvani,Luigi Mavilla,M. Madami,Irene Biancardi,Davide Girardi,Matteo Panzeri,Piero Florio,Maria Cocconcelli,David Breitbach,Philipp Pirro,Ludovica Rovatti,N. Lecis,Federico Maspero,R. Bertacco,Giacomo Corrielli,Roberto Osellame
标识
DOI:10.1038/s41467-025-64630-5
摘要
The exceptional magnetic, optical and phononic properties of Yttrium Iron Garnet (YIG) make it unique for spin-wave based and photonic applications. Yet, nanostructuring crystalline YIG and manipulating its magnetism in a non-destructive way is an outstanding challenge, and so far mostly limited to two-dimensional capabilities. Here, we show that irradiation of single-crystal YIG films with a focused UV laser drives a stable, giant enhancement of the perpendicular magnetic anisotropy, preserving the crystalline quality. This modulation is highly confined at the nanoscale in both the lateral and vertical directions, and its extension within the volume can be finely tuned with a continuous depth-control. By harnessing these three-dimensional anisotropy profiles, we demonstrate a large tuning of the spin-wave band structure, volume spatial localization, and non-reciprocity, realizing proof-of-principle 3D magnonic crystals. This straightforward, single-step, laser nanofabrication of three-dimensional magnetic systems based on crystalline YIG thin films opens the way to design novel functions in magnonic and magneto-optic devices.
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