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Maximized electron interactions at the magic angle in twisted bilayer graphene

机译:在扭曲双层石墨烯中的魔法角度最大化的电子相互作用

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摘要

The electronic properties of heterostructures of atomically thin van der Waals crystals can be modified substantially by moire superlattice potentials from an interlayer twist between crystals(1,2). Moire tuning of the band structure has led to the recent discovery of superconductivity(3,4) and correlated insulating phases5 in twisted bilayer graphene (TBG) near the 'magic angle' of twist of about 1.1 degrees, with a phase diagram reminiscent of high-transition-temperature superconductors. Here we directly map the atomic-scale structural and electronic properties of TBG near the magic angle using scanning tunnelling microscopy and spectroscopy. We observe two distinct van Hove singularities (VHSs) in the local density of states around the magic angle, with an energy separation of 57 millielectronvolts that drops to 40 millielectronvolts with high electron/hole doping. Unexpectedly, the VHS energy separation continues to decrease with decreasing twist angle, with a lowest value of 7 to 13 millielectronvolts at a magic angle of 0.79 degrees. More crucial to the correlated behaviour of this material, we find that at the magic angle, the ratio of the Coulomb interaction to the bandwidth of each individual VHS (U/t) is maximized, which is optimal for electronic Cooper pairing mechanisms. When doped near the half-moire-band filling, a correlation-induced gap splits the conduction VHS with a maximum size of 6.5 millielectronvolts at 1.15 degrees, dropping to 4 millielectronvolts at 0.79 degrees. We capture the doping-dependent and angle-dependent spectroscopy results using a Hartree-Fock model, which allows us to extract the on-site and nearest-neighbour Coulomb interactions. This analysis yields a U/t of order unity indicating that magic-angle TBG is moderately correlated. In addition, scanning tunnelling spectroscopy maps reveal an energy-and doping-dependent threefold rotational-symmetry breaking of the local density of states in TBG, with the strongest symmetry breaking near the Fermi level and further enhanced when doped to the correlated gap regime. This indicates the presence of a strong electronic nematic susceptibility or even nematic order in TBG in regions of the phase diagram where superconductivity is observed.
机译:可以通过来自晶体之间的中间层扭曲(1,2)之间的莫尔超晶格电位基本上由莫尔超晶格电位基本上修饰的电子结构的电子性质。乐队结构的莫尔调谐导致了最近的超导(3,4)和扭曲双层石墨烯(TBG)的相关绝缘相5在“魔角”的捻度约为1.1度附近,相位图让人联想-Transition-温度超导体。在这里,我们使用扫描隧道显微镜和光谱直接映射TBG附近TBG的原子尺度结构和电子特性。我们观察到围绕魔法角度的局部密度的两个不同的面包车奇异(VHSS),其能量分离为57毫升,从而落入40毫米的具有高电子/孔掺杂。出乎意料地,VHS能量分离继续随着扭转角度的减小而降低,最低值为7至13毫电铃,以0.79度的魔角。对于这种材料的相关行为来说至关重要,我们发现,在魔法角度下,库仑相互作用与每个单独的VHS(U / T)的带宽的比率最大化,这对于电子Cooper配对机构是最佳的。当掺杂近半莫尔带填充时,相关诱导的间隙在1.15度下以最大6.5毫升6.5毫升的导通VHS分裂,落入4毫升以0.79度的4毫升。我们使用Hartree-Fock模型捕获掺杂依赖性和角度依赖的光谱结果,这使我们能够提取现场和最近的邻居库仑相互作用。该分析产生了U / T的UNIT unity,其指示魔角TBG是适度相关的。此外,扫描隧穿光谱图揭示了TBG中局部密度的能量和掺杂依赖性的三倍断裂,具有最强的对称性在FERMI水平附近和进一步增强,进一步增强,掺杂到相关的间隙状态。这表明在观察超导电性的相位图中,在TBG中存在强的电子向易感性或甚至在TBG中的列目顺序。

著录项

  • 来源
    《Nature》 |2019年第7767期|95-100|共6页
  • 作者单位

    Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA;

    Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA;

    Free Univ Berlin Dahlem Ctr Complex Quantum Syst Berlin Germany|Free Univ Berlin Fachbereich Phys Berlin Germany;

    Max Planck Inst Struct & Dynam Matter Hamburg Germany;

    Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA;

    Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA|Columbia Univ Dept Appl Phys & Appl Math New York NY USA;

    Natl Inst Mat Sci Tsukuba Ibaraki Japan;

    Natl Inst Mat Sci Tsukuba Ibaraki Japan;

    Columbia Univ Dept Mech Engn New York NY 10027 USA;

    Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA;

    Max Planck Inst Struct & Dynam Matter Hamburg Germany|Flatiron Inst Ctr Computat Quantum Phys New York NY 10010 USA;

    Columbia Univ Dept Phys 538 W 120th St New York NY 10027 USA;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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  • 关键词

  • 入库时间 2022-08-18 22:15:20

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