Department of Physics, Columbia University, New York, NY 10027, USA.
Department of Applied Physics and Applied Mathematics, Columbia University, New York, NY 10027, USA.
Science. 2019 Mar 8;363(6431):1059-1064. doi: 10.1126/science.aav1910. Epub 2019 Jan 24.
Materials with flat electronic bands often exhibit exotic quantum phenomena owing to strong correlations. An isolated low-energy flat band can be induced in bilayer graphene by simply rotating the layers by 1.1°, resulting in the appearance of gate-tunable superconducting and correlated insulating phases. In this study, we demonstrate that in addition to the twist angle, the interlayer coupling can be varied to precisely tune these phases. We induce superconductivity at a twist angle larger than 1.1°-in which correlated phases are otherwise absent-by varying the interlayer spacing with hydrostatic pressure. Our low-disorder devices reveal details about the superconducting phase diagram and its relationship to the nearby insulator. Our results demonstrate twisted bilayer graphene to be a distinctively tunable platform for exploring correlated states.
具有平坦能带的材料由于强关联往往表现出奇特的量子现象。通过简单地将双层石墨烯旋转 1.1°,可以在其中诱导出一个低能的、孤立的平坦能带,从而产生可门控的超导和关联绝缘相。在这项研究中,我们证明了除了扭转角之外,层间耦合也可以通过静压改变层间间距来精确调节这些相。通过改变层间间距,我们在扭转角大于 1.1°的情况下诱导出超导性——在这种情况下,其他情况下不存在关联相。我们的低无序器件揭示了超导相图及其与附近绝缘体的关系的细节。我们的结果表明,扭曲双层石墨烯是一个独特的可调谐平台,可用于探索关联态。