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具有强各向异性的异维近藤超晶格。

Heterodimensional Kondo superlattices with strong anisotropy.

作者信息

Feng Qi, Duan Junxi, Wang Ping, Jiang Wei, Peng Huimin, Zhong Jinrui, Cao Jin, Hu Yuqing, Li Qiuli, Wang Qinsheng, Zhou Jiadong, Yao Yugui

机构信息

Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurement (MOE), School of Physics, Beijing Institute of Technology, Beijing, China.

出版信息

Nat Commun. 2024 Jun 28;15(1):5491. doi: 10.1038/s41467-024-49618-x.

Abstract

Localized magnetic moments in non-magnetic materials, by interacting with the itinerary electrons, can profoundly change the metallic properties, developing various correlated phenomena such as the Kondo effect, heavy fermion, and unconventional superconductivity. In most Kondo systems, the localized moments are introduced through magnetic impurities. However, the intrinsic magnetic properties of materials can also be modulated by the dimensionality. Here, we report the observation of Kondo effect in a heterodimensional superlattice VS-VS, in which arrays of the one-dimensional (1D) VS chains are encapsulated by two-dimensional VS layers. In such a heterodimensional Kondo superlattice, we observe the typical Kondo effect but with intriguing anisotropic field dependence. This unique anisotropy is determined to originate from the magnetic anisotropy which has the root in the unique 1D chains in the structure, as corroborated by the first-principles calculation. Our results open up a novel avenue of studying exotic correlated physics in heterodimensional materials.

摘要

非磁性材料中的局域磁矩通过与巡游电子相互作用,可深刻改变金属特性,引发各种关联现象,如近藤效应、重费米子和非常规超导性。在大多数近藤体系中,局域磁矩是通过磁性杂质引入的。然而,材料的本征磁性也可由维度进行调制。在此,我们报告了在异维超晶格VS-VS中近藤效应的观测结果,其中一维(1D)VS链阵列被二维VS层包裹。在这样一个异维近藤超晶格中,我们观测到了典型的近藤效应,但具有引人入胜的各向异性场依赖性。这种独特的各向异性被确定源于磁各向异性,其根源在于结构中独特的一维链,第一性原理计算证实了这一点。我们的结果为研究异维材料中的奇异关联物理开辟了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/056c/11214635/97ff7be1c7e0/41467_2024_49618_Fig1_HTML.jpg

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