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在魔角石墨烯中相变的级联和狄拉克复兴。

Cascade of phase transitions and Dirac revivals in magic-angle graphene.

机构信息

Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot, Israel.

Department of Physics, Massachusetts Institute of Technology, Cambridge, MA, USA.

出版信息

Nature. 2020 Jun;582(7811):203-208. doi: 10.1038/s41586-020-2373-y. Epub 2020 Jun 11.

Abstract

Twisted bilayer graphene near the magic angle exhibits rich electron-correlation physics, displaying insulating, magnetic and superconducting phases. The electronic bands of this system were predicted to narrow markedly near the magic angle, leading to a variety of possible symmetry-breaking ground states. Here, using measurements of the local electronic compressibility, we show that these correlated phases originate from a high-energy state with an unusual sequence of band population. As carriers are added to the system, the four electronic 'flavours', which correspond to the spin and valley degrees of freedom, are not filled equally. Rather, they are populated through a sequence of sharp phase transitions, which appear as strong asymmetric jumps of the electronic compressibility near integer fillings of the moiré lattice. At each transition, a single spin/valley flavour takes all the carriers from its partially filled peers, 'resetting' them to the vicinity of the charge neutrality point. As a result, the Dirac-like character observed near charge neutrality reappears after each integer filling. Measurement of the in-plane magnetic field dependence of the chemical potential near filling factor one reveals a large spontaneous magnetization, further substantiating this picture of a cascade of symmetry breaking. The sequence of phase transitions and Dirac revivals is observed at temperatures well above the onset of the superconducting and correlated insulating states. This indicates that the state that we report here, with its strongly broken electronic flavour symmetry and revived Dirac-like electronic character, is important in the physics of magic-angle graphene, forming the parent state out of which the more fragile superconducting and correlated insulating ground states emerge.

摘要

扭曲双层石墨烯在魔角附近表现出丰富的电子关联物理特性,呈现绝缘、磁性和超导相。该体系的能带结构被预测在魔角附近会明显变窄,导致各种可能的对称破缺基态。在这里,我们通过测量局部电子压缩性,表明这些关联相源于一种具有不寻常能带填充顺序的高能态。随着载流子被添加到系统中,对应于自旋和谷自由度的四个电子“味道”不是均匀填充的。相反,它们通过一系列尖锐的相变来填充,这些相变表现为在莫尔晶格的整数填充附近电子压缩性的强烈非对称跳跃。在每个转变中,单个自旋/谷味道会从其部分填充的同伴中获取所有载流子,“重置”它们到电荷中性点附近。结果,在每个整数填充后,在电荷中性附近观察到的类狄拉克特征再次出现。在填充因子为 1 附近测量化学势的面内磁场依赖性时,发现了较大的自发磁化强度,进一步证实了这种对称破缺级联的图景。在超导和相关绝缘态开始之前的较高温度下观察到相变序列和狄拉克复兴。这表明我们在这里报告的状态,其电子味道对称性强烈破缺,类狄拉克电子特征复活,在魔角石墨烯的物理中很重要,形成了超导和相关绝缘基态更脆弱的母体状态。

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