论文标题

绝缘子中的Landau量化和高度移动费用

Landau Quantization and Highly Mobile Fermions in an Insulator

论文作者

Wang, Pengjie, Yu, Guo, Jia, Yanyu, Onyszczak, Michael, Cevallos, F. Alexandre, Lei, Shiming, Klemenz, Sebastian, Watanabe, Kenji, Taniguchi, Takashi, Cava, Robert J., Schoop, Leslie M., Wu, Sanfeng

论文摘要

在密切相关的材料中,准颗粒激发可以携带分数量子数。一个有趣的可能性是形成分数化的,电荷中性的费米子,例如蜘蛛和费米子激子,导致绝缘子中中性的费米表面和兰道量化。虽然先前在量子自旋液体,拓扑结构绝缘子和量子厅系统中进行的实验暗示了电荷中性的费米表面,但其存在的证据仍然远非结论性。在这里,我们报告了在二维(2D)绝缘子中对Landau量化的实验性观察,即单层tungsten ditelluride(WTE $ _ {2} $),这是一个较大的间隙拓扑拓扑器。使用避免边缘贡献的检测方案,我们在单层绝缘子的磁路线上发现了惊人的量子振荡,其发作场的发作场高达〜0.5 TESLA。尽管具有巨大的抵抗力,但表现出许多时期的振荡曲线模仿金属中的Shubnikov-de Haas振荡。值得注意的是,在超低温度下,观察到的振荡演变成1.6特斯拉附近的离散峰,在该峰值上,兰道量化了量化量的量子。如此低的量化场与常规二维电子气体相当。我们的实验要求进一步研究WTE $ _ {2} $单层的高度不寻常的基态。这包括设备组件的影响以及其绝缘缝隙内移动费米子的可能存在和电荷中性的费米表面。

In strongly correlated materials, quasiparticle excitations can carry fractional quantum numbers. An intriguing possibility is the formation of fractionalized, charge-neutral fermions, e.g., spinons and fermionic excitons, that result in neutral Fermi surfaces and Landau quantization in an insulator. While previous experiments in quantum spin liquids, topological Kondo insulators, and quantum Hall systems have hinted at charge-neutral Fermi surfaces, evidence for their existence remains far from conclusive. Here we report experimental observation of Landau quantization in a two dimensional (2D) insulator, i.e., monolayer tungsten ditelluride (WTe$_{2}$), a large gap topological insulator. Using a detection scheme that avoids edge contributions, we uncover strikingly large quantum oscillations in the monolayer insulator's magnetoresistance, with an onset field as small as ~ 0.5 tesla. Despite the huge resistance, the oscillation profile, which exhibits many periods, mimics the Shubnikov-de Haas oscillations in metals. Remarkably, at ultralow temperatures the observed oscillations evolve into discrete peaks near 1.6 tesla, above which the Landau quantized regime is fully developed. Such a low onset field of quantization is comparable to high-mobility conventional two-dimensional electron gases. Our experiments call for further investigation of the highly unusual ground state of the WTe$_{2}$ monolayer. This includes the influence of device components and the possible existence of mobile fermions and charge-neutral Fermi surfaces inside its insulating gap.

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