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研究钕锰锗中的斯格明子稳定性和核心极性反转。

Investigating skyrmion stability and core polarity reversal in NdMnGe.

作者信息

Treves Samuel K, Ukleev Victor, Apseros Andreas, Massey Jamie Robert, Wagner Kai, Lehmann Paul, Kitaori Aki, Kanazawa Naoya, Brock Jeffrey A, Finizio Simone, Reuteler Joakim, Tokura Yoshinori, Maletinsky Patrick, Scagnoli Valerio

机构信息

Department of Physics, University of Basel, 4056, Basel, Switzerland.

Laboratory for Mesoscopic Systems, Department of Materials, ETH Zurich, 8093, Zurich, Switzerland.

出版信息

Sci Rep. 2025 Jan 2;15(1):461. doi: 10.1038/s41598-024-82114-2.

Abstract

We present a study on nanoscale skyrmionic spin textures in [Formula: see text], a rare-earth complex noncollinear ferromagnet. We confirm, using X-ray microscopy, that [Formula: see text] can host lattices of metastable skyrmion bubbles at room temperature in the absence of a magnetic field, after applying a suitable field cooling protocol. The skyrmion bubbles are robust against temperature changes from room temperature to 330 K. Furthermore, the skyrmion bubbles can be distorted, deformed, and recovered by varying strength and orientation of the applied magnetic field. We have used nitrogen-vacancy nanoscale magnetic imaging to estimate and map the magnetic stray fields originating from our [Formula: see text] lamella samples and find stray field magnitudes on the order of a few mT near the sample surface. Micromagnetic simulations show an overall agreement with the observed behaviour of the sample under different magnetic field protocols. We also find that the presence of the Dzyaloshinskii-Moriya interaction is not required to reproduce our experimental results. Its inclusion in the simulation leads to a reversal of the skyrmionic object core polarity, which is not experimentally observed. Our results further corroborate the stability and robustness of the skyrmion bubbles formed in [Formula: see text] and their potential for future spintronic applications.

摘要

我们展示了一项关于[化学式:见原文]中纳米级斯格明子自旋纹理的研究,[化学式:见原文]是一种稀土复合非共线铁磁体。我们使用X射线显微镜证实,在应用合适的场冷协议后,[化学式:见原文]在室温且无磁场的情况下能够容纳亚稳态斯格明子泡晶格。这些斯格明子泡在从室温到330 K的温度变化下具有稳定性。此外,通过改变外加磁场的强度和方向,斯格明子泡可以发生扭曲、变形并恢复原状。我们使用氮空位纳米级磁成像来估计和绘制源自我们的[化学式:见原文]薄片样品的磁杂散场,并在样品表面附近发现杂散场大小约为几毫特斯拉。微磁模拟显示与在不同磁场协议下观察到的样品行为总体一致。我们还发现,重现我们的实验结果并不需要存在Dzyaloshinskii-Moriya相互作用。在模拟中包含该相互作用会导致斯格明子物体核心极性反转,这在实验中并未观察到。我们的结果进一步证实了在[化学式:见原文]中形成的斯格明子泡的稳定性和鲁棒性及其在未来自旋电子学应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d28/11697451/136a13e7c04b/41598_2024_82114_Fig1_HTML.jpg

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