论文标题

镜子对称魔法三层石墨烯中的可调相边界和超强耦合超导性

Tunable Phase Boundaries and Ultra-Strong Coupling Superconductivity in Mirror Symmetric Magic-Angle Trilayer Graphene

论文作者

Park, Jeong Min, Cao, Yuan, Watanabe, Kenji, Taniguchi, Takashi, Jarillo-Herrero, Pablo

论文摘要

Moiré超级晶格最近成为一个新型平台,可以通过前所未有的可调性研究相关的物理和超导性。尽管在其他几个Moiré系统中也观察到了相关效应,但魔法扭曲的双层石墨烯(MATBG)仍然是唯一可重复测量鲁棒超导性的唯一一种。在这里,我们意识到了一种新的Moiré超导体,镜像对称魔法扭曲的三层石墨烯(Mattg),具有电子结构和超导性能的可调性。 HALL效应和量子振荡测量与密度和电场的函数,使我们能够确定系统在正常状态下的可调相边界。然后,零磁场电阻率的测量结果表明,超导的存在与来自每个Moiré振荡器的两个载体出现的断裂对称相。令人惊讶的是,我们发现超导阶段在围绕破碎对称阶段的范霍夫奇点(VHS)处受到抑制和界定,这很难与弱耦合BCS理论相吻合。此外,系统的广泛可调节性使我们能够达到超强的耦合体制,其特征是金兹堡 - 兰德(Ginzburg-landau)的连贯性长度达到平均粒子间距离,并且非常大的$ t_ \ t_ \ mathrm {bkt}/t_/t_ {f} $ bk $ t_ $ t_ $ t y math $ bk \ bk \ bk \ bk \ bk的比例Berezinskii-Kosterlitz-分别是无与伦比的过渡和费米温度。这些观察结果表明,MATTG可以接近二维BCS-BEC跨界的电气调节。我们的结果建立了新一代可调的Moiré超导体,有可能彻底改变我们的基本理解和强耦合超导性的应用。

Moiré superlattices have recently emerged as a novel platform where correlated physics and superconductivity can be studied with unprecedented tunability. Although correlated effects have been observed in several other moiré systems, magic-angle twisted bilayer graphene (MATBG) remains the only one where robust superconductivity has been reproducibly measured. Here we realize a new moiré superconductor, mirror symmetric magic-angle twisted trilayer graphene (MATTG) with dramatically richer tunability in electronic structure and superconducting properties. Hall effect and quantum oscillations measurements as a function of density and electric field allow us to determine the system's tunable phase boundaries in the normal state. Zero magnetic field resistivity measurements then reveal that the existence of superconductivity is intimately connected to the broken symmetry phase emerging from two carriers per moiré unit cell. Strikingly, we find that the superconducting phase gets suppressed and bounded at the van Hove singularities (vHs) partially surrounding the broken-symmetry phase, which is difficult to reconcile with weak-coupling BCS theory. Moreover, the extensive in situ tunability of our system allows us to achieve the ultra-strong coupling regime, characterized by a Ginzburg-Landau coherence length reaching the average inter-particle distance and very large $T_\mathrm{BKT}/T_{F}$ ratios in excess of 0.1, where $T_\mathrm{BKT}$ and $T_F$ are the Berezinskii-Kosterlitz-Thouless transition and Fermi temperatures, respectively. These observations suggest that MATTG can be electrically tuned close to the two-dimensional BCS-BEC crossover. Our results establish a new generation of tunable moiré superconductors with the potential to revolutionize our fundamental understanding and the applications of strong coupling superconductivity.

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