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解开魔角石墨烯中的绝缘和超导序。

Untying the insulating and superconducting orders in magic-angle graphene.

作者信息

Stepanov Petr, Das Ipsita, Lu Xiaobo, Fahimniya Ali, Watanabe Kenji, Taniguchi Takashi, Koppens Frank H L, Lischner Johannes, Levitov Leonid, Efetov Dmitri K

机构信息

ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, Barcelona, Spain.

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

出版信息

Nature. 2020 Jul;583(7816):375-378. doi: 10.1038/s41586-020-2459-6. Epub 2020 Jul 6.

Abstract

The coexistence of superconducting and correlated insulating states in magic-angle twisted bilayer graphene prompts fascinating questions about their relationship. Independent control of the microscopic mechanisms that govern these phases could help uncover their individual roles and shed light on their intricate interplay. Here we report on direct tuning of electronic interactions in this system by changing the separation distance between the graphene and a metallic screening layer. We observe quenching of correlated insulators in devices with screening layer separations that are smaller than the typical Wannier orbital size of 15 nanometres and with twist angles that deviate slightly from the magic angle of 1.10 ± 0.05 degrees. Upon extinction of the insulating orders, the vacated phase space is taken over by superconducting domes that feature critical temperatures comparable to those in devices with strong insulators. In addition, we find that insulators at half-filling can reappear in small out-of-plane magnetic fields of 0.4 tesla, giving rise to quantized Hall states with a Chern number of 2. Our study suggests re-examination of the often-assumed 'parent-and-child' relation between the insulating and superconducting phases in moiré graphene, and suggests a way of directly probing the microscopic mechanisms of superconductivity in strongly correlated systems.

摘要

魔角扭曲双层石墨烯中超导态与关联绝缘态的共存引发了关于它们之间关系的有趣问题。对支配这些相的微观机制进行独立控制,有助于揭示它们各自的作用,并阐明它们复杂的相互作用。在此,我们报告通过改变石墨烯与金属屏蔽层之间的间距来直接调控该系统中的电子相互作用。我们观察到,在屏蔽层间距小于典型的15纳米万尼尔轨道尺寸且扭曲角略偏离1.10±0.05度的魔角的器件中,关联绝缘态会猝灭。在绝缘序消失后,空出的相空间被超导穹顶占据,其临界温度与具有强绝缘体的器件中的临界温度相当。此外,我们发现半填充时的绝缘体在0.4特斯拉的小面外磁场中会再次出现,产生陈数为2的量子化霍尔态。我们的研究表明,需要重新审视莫尔石墨烯中绝缘相和超导相之间通常假定的“母子”关系,并提出了一种直接探测强关联系统中超导微观机制 的方法。

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