三角晶系
石墨
基态
凝聚态物理
物理
材料科学
化学
结晶学
原子物理学
复合材料
晶体结构
作者
Imre Hagymási,M. Isa,Zoltán Tajkov,Krisztián Márity,László Oroszlány,János Koltai,Assem Alassaf,Péter Kun,Konrád Kandrai,András Pálinkás,Péter Vancsó,Levente Tapasztó,Péter Nemes–Incze
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-09-02
卷期号:8 (35)
被引量:24
标识
DOI:10.1126/sciadv.abo6879
摘要
In crystalline solids, the interactions of charge and spin can result in a variety of emergent quantum ground states, especially in partially filled, topological flat bands such as Landau levels or in “magic angle” graphene layers. Much less explored is rhombohedral graphite (RG), perhaps the simplest and structurally most perfect condensed matter system to host a flat band protected by symmetry. By scanning tunneling microscopy, we map the flat band charge density of 8, 10, 14, and 17 layers and identify a domain structure emerging from a competition between a sublattice antiferromagnetic insulator and a gapless correlated paramagnet. Our density matrix renormalization group calculations explain the observed features and demonstrate that the correlations are fundamentally different from graphene-based magnetism identified until now, forming the ground state of a quantum magnet. Our work establishes RG as a platform to study many-body interactions beyond the mean-field approach, where quantum fluctuations and entanglement dominate.
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