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Tunable strongly coupled superconductivity in magic-angle twisted trilayergraphene

机译:魔法角扭曲三叶图中的可调强烈耦合的超导

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Moiré superlattices~(1,2)have recently emerged as a platform upon which correlated physics and superconductivity can be studied with unprecedented tunability~(3-6). Although correlated effects have been observed in several other moiré systems~(7-17), magic-angle twisted bilayer graphene remains the only one in which robust superconductivity has been reproducibly measured~(4-6). Here we realize a moiré superconductor in magic-angle twisted trilayer graphene (MATTG)~(18), which has better tunability of its electronic structure and superconducting properties than magic-angle twisted bilayer graphene. Measurements of the Hall effect and quantum oscillations as a function of density and electric field enable us to determine the tunable phase boundaries of the system in the normal metallic state. Zero-magnetic-field resistivity measurements reveal that the existence of superconductivity is intimately connected to the broken-symmetry phase that emerges from two carriers per moiré unit cell. We find that the superconducting phase is suppressed and bounded at the Van Hove singularities that partially surround the broken-symmetry phase, which is difficult to reconcile with weak-coupling Bardeen-Cooper-Schrieffer theory. Moreover, the extensive in situ tunability of our system allows us to reach the ultrastrong-coupling regime, characterized by a Ginzburg-Landau coherence length that reaches the average inter-particle distance, and very large T_(BKT)/T_(F)values, in excess of 0.1 (where T_(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 crossover to a two-dimensional Bose-Einstein condensate. Our results establish a family of tunable moiré superconductors that have the potential to revolutionize our fundamental understanding of and the applications for strongly coupled superconductivity.
机译:Moiré超级图案〜(1,2)最近作为一个平台出现,可以在前所未有的可调性〜(3-6)中研究相关物理和超导性。虽然在其他几个Moiré系统中已经观察到相关效果〜(7-17),但是魔法角扭曲双层石墨烯仍然是唯一的超导性可重复测量〜(4-6)的效果。在这里,我们在魔法角扭曲三层石墨烯(MATTG)〜(18)中实现了Moiré超导体,其具有比魔法角扭曲双层石墨烯的电子结构和超导性能的可调性。作为密度和电场的函数的霍尔效应和量子振荡的测量使我们能够在正常的金属状态下确定系统的可调谐相位边界。零磁场电阻率测量表明,超导性的存在密切相关于每个Moiré单位细胞的两个载波中出现的破碎对称阶段。我们发现超导相位被抑制和界定在凡凡围绕破碎对称相的互联网上,这难以耦合Bardeen-Cooper-Schrieffer理论。此外,我们的系统的广泛可调性使我们能够达到超超龙耦合制度,其特征在于吉他堡 - Landau相干长度,该长度达到平均粒子距离,以及非常大的T_(BKT)/ T_(F)值超过0.1(其中T_(BKT)和T_(F)分别是Berzinskii-Kosterlitz-Thousless过渡和费米温度)。这些观察结果表明,MATTG可以靠近交叉电气调谐到二维BOSE-Einstein冷凝物。我们的结果建立了一系列可调型莫尔超级导体,有可能彻底改变我们对强烈耦合超导性的基础知识和应用。

著录项

  • 来源
    《Nature 》 |2021年第7845期| 249-255| 共7页
  • 作者单位

    Department of Physics Massachusetts Institute of Technology;

    Department of Physics Massachusetts Institute of Technology;

    Research Center for Functional Materials National Institute for Materials Science;

    International Center for Materials Nanoarchitectonics National Institute for Materials Science;

    Department of Physics Massachusetts Institute of Technology;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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