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Angle resolved photoemission spectroscopy reveals spin charge separation in metallic MoSe2 grain boundary

机译:角度分辨光发射光谱揭示了金属MoSe2晶界中的自旋电荷分离

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摘要

Material line defects are one-dimensional structures but the search and proof of electron behaviour consistent with the reduced dimension of such defects has been so far unsuccessful. Here we show using angle resolved photoemission spectroscopy that twin-grain boundaries in the layered semiconductor MoSe2 exhibit parabolic metallic bands. The one-dimensional nature is evident from a charge density wave transition, whose periodicity is given by kF/π, consistent with scanning tunnelling microscopy and angle resolved photoemission measurements. Most importantly, we provide evidence for spin- and charge-separation, the hallmark of one-dimensional quantum liquids. Our studies show that the spectral line splits into distinctive spinon and holon excitations whose dispersions exactly follow the energy-momentum dependence calculated by a Hubbard model with suitable finite-range interactions. Our results also imply that quantum wires and junctions can be isolated in line defects of other transition metal dichalcogenides, which may enable quantum transport measurements and devices.
机译:物质线缺陷是一维结构,但是到目前为止,与这种缺陷的减小尺寸一致的电子行为的搜索和证明一直没有成功。在这里,我们显示了使用角度分辨光发射光谱法,表明层状半导体MoSe2中的双晶边界表现出抛物线形金属带。一维性质可以从电荷密度波跃迁中看出,其周期性由kF /π给出,与扫描隧道显微镜和角度分辨光发射测量一致。最重要的是,我们提供了自旋和电荷分离的证据,这是一维量子液体的特征。我们的研究表明,光谱线分为明显的自旋和哈龙激发,其色散完全遵循由Hubbard模型计算的能量动量依赖性,并具有适当的有限范围相互作用。我们的结果还暗示,可以将量子线和结隔离在其他过渡金属二卤化物的线缺陷中,从而可以进行量子传输测量和器件。

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