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直接 Kagome 人工自旋冰中的环形相变

Toroidic phase transitions in a direct-kagome artificial spin ice.

作者信息

Yue Wen-Cheng, Yuan Zixiong, Huang Peiyuan, Sun Yizhe, Gao Tan, Lyu Yang-Yang, Tu Xuecou, Dong Sining, He Liang, Dong Ying, Cao Xun, Kang Lin, Wang Huabing, Wu Peiheng, Nisoli Cristiano, Wang Yong-Lei

机构信息

School of Electronic Science and Engineering, Nanjing University, Nanjing, China.

Purple Mountain Laboratories, Nanjing, China.

出版信息

Nat Nanotechnol. 2024 Aug;19(8):1101-1107. doi: 10.1038/s41565-024-01666-6. Epub 2024 Apr 29.

Abstract

Ferrotoroidicity-the fourth form of primary ferroic order-breaks both space and time-inversion symmetry. So far, direct observation of ferrotoroidicity in natural materials remains elusive, which impedes the exploration of ferrotoroidic phase transitions. Here we overcome the limitations of natural materials using an artificial nanomagnet system that can be characterized at the constituent level and at different effective temperatures. We design a nanomagnet array as to realize a direct-kagome spin ice. This artificial spin ice exhibits robust toroidal moments and a quasi-degenerate ground state with two distinct low-temperature toroidal phases: ferrotoroidicity and paratoroidicity. Using magnetic force microscopy and Monte Carlo simulation, we demonstrate a phase transition between ferrotoroidicity and paratoroidicity, along with a cross-over to a non-toroidal paramagnetic phase. Our quasi-degenerate artificial spin ice in a direct-kagome structure provides a model system for the investigation of magnetic states and phase transitions that are inaccessible in natural materials.

摘要

铁环性——一级铁性序的第四种形式——打破了空间和时间反演对称性。到目前为止,在天然材料中直接观察到铁环性仍然难以实现,这阻碍了对铁环性相变的探索。在这里,我们利用一种人工纳米磁体系统克服了天然材料的局限性,该系统可以在组成层面和不同有效温度下进行表征。我们设计了一种纳米磁体阵列以实现直接 Kagome 自旋冰。这种人工自旋冰展现出稳健的环形矩和具有两个不同低温环形相的准简并基态:铁环性和顺环性。通过磁力显微镜和蒙特卡罗模拟,我们展示了铁环性和顺环性之间的相变,以及向非环形顺磁相的转变。我们在直接 Kagome 结构中的准简并人工自旋冰为研究天然材料中无法实现的磁态和相变提供了一个模型系统。

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