Department of Physics, Massachusetts Institute of Technology, Cambridge, MA, USA.
Research Center for Functional Materials, National Institute for Materials Science, Tsukuba, Japan.
Nature. 2021 Apr;592(7852):43-48. doi: 10.1038/s41586-021-03366-w. Epub 2021 Mar 31.
Interaction-driven spontaneous symmetry breaking lies at the heart of many quantum phases of matter. In moiré systems, broken spin/valley 'flavour' symmetry in flat bands underlies the parent state from which correlated and topological ground states ultimately emerge. However, the microscopic mechanism of such flavour symmetry breaking and its connection to the low-temperature phases are not yet understood. Here we investigate the broken-symmetry many-body ground state of magic-angle twisted bilayer graphene (MATBG) and its nontrivial topology using simultaneous thermodynamic and transport measurements. We directly observe flavour symmetry breaking as pinning of the chemical potential at all integer fillings of the moiré superlattice, demonstrating the importance of flavour Hund's coupling in the many-body ground state. The topological nature of the underlying flat bands is manifested upon breaking time-reversal symmetry, where we measure energy gaps corresponding to Chern insulator states with Chern numbers 3, 2, 1 at filling factors 1, 2, 3, respectively, consistent with flavour symmetry breaking in the Hofstadter butterfly spectrum of MATBG. Moreover, concurrent measurements of resistivity and chemical potential provide the temperature-dependent charge diffusivity of MATBG in the strange-metal regime-a quantity previously explored only in ultracold atoms. Our results bring us one step closer to a unified framework for understanding interactions in the topological bands of MATBG, with and without a magnetic field.
相互作用驱动的自发对称破缺是许多物质的量子相的核心。在条纹系统中,在平带中破坏的自旋/谷“味道”对称性是相关和拓扑基态最终出现的母体状态的基础。然而,这种味道对称性破坏的微观机制及其与低温相的关系尚不清楚。在这里,我们使用同时的热力学和输运测量来研究魔角扭曲双层石墨烯 (MATBG) 的破对称多体基态及其非平凡拓扑结构。我们直接观察到化学势在所有条纹超晶格的整数填充处被钉扎,从而证明了味道 Hund 耦合在多体基态中的重要性。在破坏时间反转对称性时,底层平带的拓扑性质就显现出来了,我们测量了相应的能隙,对应于 Chern 绝缘体状态,在填充因子分别为 1、2、3 时,Chern 数分别为 3、2、1,这与 MATBG 的 Hofstadter 蝴蝶谱中的味道对称性破缺一致。此外,同时测量电阻率和化学势提供了在奇异金属区 MATBG 的电荷扩散率随温度的变化情况——这一数量以前只在超冷原子中得到了探索。我们的结果使我们更接近于理解带有和不带有磁场的 MATBG 的拓扑能带中的相互作用的统一框架。