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结晶的 Kagome 人工自旋冰

Crystallizing Kagome Artificial Spin Ice.

作者信息

Yue Wen-Cheng, Yuan Zixiong, Lyu Yang-Yang, Dong Sining, Zhou Jian, Xiao Zhi-Li, He Liang, Tu Xuecou, Dong Ying, Wang Huabing, Xu Weiwei, Kang Lin, Wu Peiheng, Nisoli Cristiano, Kwok Wai-Kwong, Wang Yong-Lei

机构信息

Research Institute of Superconductor Electronics, School of Electronic Science and Engineering, Nanjing University, Nanjing 210023, China.

Jiangsu Provincial Key Laboratory of Advanced Photonic and Electronic Materials, School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, China.

出版信息

Phys Rev Lett. 2022 Jul 29;129(5):057202. doi: 10.1103/PhysRevLett.129.057202.

Abstract

Artificial spin ices are engineered arrays of dipolarly coupled nanobar magnets. They enable direct investigations of fascinating collective phenomena from their diverse microstates. However, experimental access to ground states in the geometrically frustrated systems has proven difficult, limiting studies and applications of novel properties and functionalities from the low energy states. Here, we introduce a convenient approach to control the competing diploar interactions between the neighboring nanomagnets, allowing us to tailor the vertex degeneracy of the ground states. We achieve this by tuning the length of selected nanobar magnets in the spin ice lattice. We demonstrate the effectiveness of our method by realizing multiple low energy microstates in a kagome artificial spin ice, particularly the hardly accessible long range ordered ground state-the spin crystal state. Our strategy can be directly applied to other artificial spin systems to achieve exotic phases and explore new emergent collective behaviors.

摘要

人工自旋冰是由偶极耦合纳米棒磁体构成的工程阵列。它们能够从其多样的微观状态直接研究引人入胜的集体现象。然而,事实证明,在几何受挫系统中实验获取基态很困难,这限制了对低能态新特性和功能的研究及应用。在此,我们引入一种便捷方法来控制相邻纳米磁体之间相互竞争的偶极相互作用,从而能够定制基态的顶点简并度。我们通过调整自旋冰晶格中选定纳米棒磁体的长度来实现这一点。我们通过在一个 Kagome 人工自旋冰中实现多个低能微观状态,特别是难以获得的长程有序基态——自旋晶体态,证明了我们方法的有效性。我们的策略可直接应用于其他人工自旋系统,以实现奇异相并探索新出现的集体行为。

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