论文标题
魔法扭曲双层石墨烯中的电子自旋共振和集体激发
Electron spin resonance and collective excitations in magic-angle twisted bilayer graphene
论文作者
论文摘要
在密切相关的系统中,集体激发包含有关基础状态的电子顺序的关键信息。一系列最近的实验暗示了旋转和山谷的同胞频道中的大量集体模式。但是,由于缺乏自旋探针,直接观察集体激发一直难以捉摸。在这项工作中,我们使用电阻检测的电子旋转谐振技术来寻找魔法扭曲的双层石墨烯中的低能集体激发。我们报告以微波诱导的共振形式直接观察集体模式,靠近Moiré平板带的一半填充。这些共振模式的频率 - 磁场依赖性将光线放在Intervalley自旋耦合的性质上,从而使我们能够提取参数,例如Intervelley交换相互作用和旋转刚度。两个独立的观察结果证明,微波共振的产生和检测取决于平坦的莫伊尔能带内的强相关性。首先,强大的共振响应的发作与半莫伊尔填充时的自发风味极化相吻合,并且在下面的费米表面是issospin不偏振的密度范围内仍然不存在。其次,我们对石墨烯单层和双层样品进行了相同的共振测量,包括具有较大扭曲角的扭曲的双层,在该扭曲角度不存在。我们没有观察到在这些样品中,在各种载体密度,微波频率和功率上没有迹象。一个自然的解释是,魔术角附近的共振响应源自“狄拉克的复兴”和由此产生的isospin顺序。
In a strongly correlated system, collective excitations contain key information regarding the electronic order of the underlying ground state. An abundance of collective modes in the spin and valley isospin channels of magic-angle graphene moiré bands has been alluded to by a series of recent experiments. However, direct observation of collective excitations has remained elusive due to the lack of a spin probe. In this work, we use a resistively-detected electron spin resonance technique to look for low-energy collective excitations in magic-angle twisted bilayer graphene. We report direct observation of collective modes in the form of microwave-induced resonance near half filling of the moiré flatbands. The frequency-magnetic field dependence of these resonance modes sheds light onto the nature of intervalley spin coupling, allowing us to extract parameters such as intervalley exchange interaction and spin stiffness. Two independent observations testify that the generation and detection of the microwave resonance relies on the strong correlation within the flat moiré energy band. First, the onset of robust resonance response coincides with the spontaneous flavor polarization at half moiré filling, and remains absent in the density range where the underlying Fermi surface is isospin unpolarized. Second, we performed the same resonance measurement on graphene monolayer and bilayer samples, including twisted bilayer with a large twist angle, where flatband physics is absent. We observe no indication of resonance response in these samples across a large range of carrier density, microwave frequency and power. A natural explanation is that the resonance response near the magic angle originates from "Dirac revivals" and the resulting isospin order.