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量子霍尔液体的异常序列揭示了双层石墨烯中可调节的里夫希茨转变。

Anomalous sequence of quantum Hall liquids revealing a tunable Lifshitz transition in bilayer graphene.

作者信息

Varlet Anastasia, Bischoff Dominik, Simonet Pauline, Watanabe Kenji, Taniguchi Takashi, Ihn Thomas, Ensslin Klaus, Mucha-Kruczyński Marcin, Fal'ko Vladimir I

机构信息

Solid State Physics Laboratory, ETH Zürich, 8093 Zürich, Switzerland.

Advanced Materials Laboratory, National Institute for Materials Science, 1-1 Namiki, Tsukuba 305-0044, Japan.

出版信息

Phys Rev Lett. 2014 Sep 12;113(11):116602. doi: 10.1103/PhysRevLett.113.116602. Epub 2014 Sep 9.

DOI:10.1103/PhysRevLett.113.116602
PMID:25259994
Abstract

Bilayer graphene is a unique system where both the Fermi energy and the low-energy electron dispersion can be tuned. This is brought about by an interplay between trigonal warping and the band gap opened by a transverse electric field. Here, we drive the Lifshitz transition in bilayer graphene to experimentally controllable carrier densities by applying a large transverse electric field to a h-BN-encapsulated bilayer graphene structure. We perform magnetotransport measurements and investigate the different degeneracies in the Landau level spectrum. At low magnetic fields, the observation of filling factors -3 and -6 quantum Hall states reflects the existence of three maxima at the top of the valence-band dispersion. At high magnetic fields, all integer quantum Hall states are observed, indicating that deeper in the valence band the constant energy contours are singly connected. The fact that we observe ferromagnetic quantum Hall states at odd-integer filling factors testifies to the high quality of our sample. This enables us to identify several phase transitions between correlated quantum Hall states at intermediate magnetic fields, in agreement with the calculated evolution of the Landau level spectrum. The observed evolution of the degeneracies, therefore, reveals the presence of a Lifshitz transition in our system.

摘要

双层石墨烯是一个独特的体系,其中费米能量和低能电子色散都可以被调控。这是由三角翘曲和横向电场打开的带隙之间的相互作用导致的。在此,我们通过对h-BN封装的双层石墨烯结构施加一个大的横向电场,将双层石墨烯中的里夫希茨转变驱动到实验可控的载流子密度。我们进行了磁输运测量,并研究了朗道能级谱中的不同简并度。在低磁场下,对填充因子为-3和-6的量子霍尔态的观测反映了价带色散顶部存在三个极大值。在高磁场下,观测到了所有的整数量子霍尔态,这表明在价带更深的地方,等能轮廓是单连通的。我们在奇数整数填充因子下观测到铁磁量子霍尔态这一事实证明了我们样品的高质量。这使我们能够识别出中间磁场下相关量子霍尔态之间的几个相变,这与计算得到的朗道能级谱的演化一致。因此,观测到的简并度的演化揭示了我们的体系中存在里夫希茨转变。

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