论文标题

重型费米昂抗铁磁铁Cein $ _3 $

A microscopic Kondo lattice model for the heavy fermion antiferromagnet CeIn$_3$

论文作者

Simeth, W., Wang, Z., Ghioldi, E. A., Fobes, D. M., Podlesnyak, A., Sung, N. H., Bauer, E. D., Lass, J., Vonka, J., Mazzone, D. G., Niedermayer, C., Nomura, Yusuke, Arita, Ryotaro, Batista, C. D., Ronning, F., Janoschek, M.

论文摘要

定位边界的电子在所有类别的强相关电子材料和许多其他具有新兴功能的量子材料中产生物质的外来状态。重型电子金属是一个模型示例,其中磁相互作用是由局部和巡回电子的相对极限引起的。这种显着的二元性与多种新颖的量子物质状态(例如非常规超导性,电子纽扣状态,隐藏秩序,隐藏的顺序以及最近的物质拓扑状态)(例如拓扑结合绝缘子)和近近期半径和推定的窃听超级负责人等物质的拓扑状态密切相关。杰出的挑战是,众所周知,捕获基础电子二分法的原型近藤晶格模型很难解决真实材料。在这里,我们在这里显示,使用典型的强相关的抗fiferromagnet Cein $ _3 $,可以将嵌入Ab Itible Bandstroucture计算输入的多轨周期性周期性模型降低到简单的近kondo-Heisenberg模型,从而捕获磁性相互作用。我们通过高分辨率的中子光​​谱法验证了这种可进行的哈密顿量,该光谱准确地重现了CEIN $ _3 $中的磁性软模式,据信这可以介导非常规的超导性。我们的研究为对金属量子状态(例如非常规超导性)的定量理解铺平了道路。

Electrons at the border of localization generate exotic states of matter across all classes of strongly correlated electron materials and many other quantum materials with emergent functionality. Heavy electron metals are a model example, in which magnetic interactions arise from the opposing limits of localized and itinerant electrons. This remarkable duality is intimately related to the emergence of a plethora of novel quantum matter states such as unconventional superconductivity, electronic-nematic states, hidden order and most recently topological states of matter such as topological Kondo insulators and Kondo semimetals and putative chiral superconductors. The outstanding challenge is that the archetypal Kondo lattice model that captures the underlying electronic dichotomy is notoriously difficult to solve for real materials. Here we show, using the prototypical strongly-correlated antiferromagnet CeIn$_3$, that a multi-orbital periodic Anderson model embedded with input from ab initio bandstructure calculations can be reduced to a simple Kondo-Heisenberg model, which captures the magnetic interactions quantitatively. We validate this tractable Hamiltonian via high-resolution neutron spectroscopy that reproduces accurately the magnetic soft modes in CeIn$_3$, which are believed to mediate unconventional superconductivity. Our study paves the way for a quantitative understanding of metallic quantum states such as unconventional superconductivity.

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