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Experimental realization of two-dimensional Dirac nodal line fermions in monolayer Cu2Si

机译:单层Cu2Si中二维Dirac节点线费米子的实验实现

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摘要

Topological nodal line semimetals, a novel quantum state of materials, possess topologically nontrivial valence and conduction bands that touch at a line near the Fermi level. The exotic band structure can lead to various novel properties, such as long-range Coulomb interaction and flat Landau levels. Recently, topological nodal lines have been observed in several bulk materials, such as PtSn4, ZrSiS, TlTaSe2 and PbTaSe2. However, in two-dimensional materials, experimental research on nodal line fermions is still lacking. Here, we report the discovery of two-dimensional Dirac nodal line fermions in monolayer Cu2Si based on combined theoretical calculations and angle-resolved photoemission spectroscopy measurements. The Dirac nodal lines in Cu2Si form two concentric loops centred around the Γ point and are protected by mirror reflection symmetry. Our results establish Cu2Si as a platform to study the novel physical properties in two-dimensional Dirac materials and provide opportunities to realize high-speed low-dissipation devices.
机译:拓扑结线半金属是一种新型的材料量子态,具有在费米能级附近的一条直线上接触的拓扑上不重要的化合价和导带。奇特的能带结构可以导致各种新颖的特性,例如长距离库仑相互作用和平坦的朗道能级。最近,在几种块状材料中观察到了拓扑结线,例如PtSn4,ZrSiS,TlTaSe2和PbTaSe2。但是,在二维材料中,仍然缺乏对结线费米子的实验研究。在这里,我们报告了基于组合理论计算和角度分辨光发射光谱法测量的单层Cu2Si中二维Dirac节点线费米子的发现。 Cu2Si中的狄拉克节点线形成两个以Γ点为中心的同心环,并受到镜面反射对称性的保护。我们的结果建立了Cu2Si作为研究二维Dirac材料中新物理性质的平台,并为实现高速低耗散器件提供了机会。

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