自旋电子学
磁性
范德瓦尔斯力
凝聚态物理
自旋(空气动力学)
材料科学
反铁磁性
自旋工程
磁学
各向异性
磁铁
自旋极化
铁磁性
物理
电子
自旋霍尔效应
量子力学
分子
热力学
作者
Eugene Park,John P. Philbin,Hang Chi,Joshua J. Sanchez,Connor A. Occhialini,Georgios Varnavides,Jonathan B. Curtis,Zhigang Song,Julian Klein,Joachim Dahl Thomsen,Myung‐Geun Han,Alexandre C. Foucher,Kseniia Mosina,Deepika Kumawat,N. Gonzalez‐Yepez,Yimei Zhu,Zdeněk Sofer,Riccardo Comin,Jagadeesh S. Moodera,Prineha Narang
标识
DOI:10.1002/adma.202401534
摘要
The exploration of 1D magnetism, frequently portrayed as spin chains, constitutes an actively pursued research field that illuminates fundamental principles in many-body problems and applications in magnonics and spintronics. The inherent reduction in dimensionality often leads to robust spin fluctuations, impacting magnetic ordering and resulting in novel magnetic phenomena. Here, structural, magnetic, and optical properties of highly anisotropic 2D van der Waals antiferromagnets that uniquely host spin chains are explored. First-principle calculations reveal that the weakest interaction is interchain, leading to essentially 1D magnetic behavior in each layer. With the additional degree of freedom arising from its anisotropic structure, the structure is engineered by alloying, varying the 1D spin chain lengths using electron beam irradiation, or twisting for localized patterning, and spin textures are calculated, predicting robust stability of the antiferromagnetic ordering. Comparing with other spin chain magnets, these materials are anticipated to bring fresh perspectives on harvesting low-dimensional magnetism.
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