论文标题
单层激子绝缘子的证据
Evidence for a Monolayer Excitonic Insulator
论文作者
论文摘要
拓扑与相关性之间的相互作用可以产生各种量子阶段,其中许多阶段仍有待探索。最近的进步将单层WTE2确定为以高度可调的方式这样做的有前途的材料。该二维(2D)晶体的基态可以从量子自旋霍尔绝缘子(QSHI)静电调节到超导体。然而,关于绝缘状态的差距开放机制仍然未知。在这里,我们报告的证据表明,QSHI也是激发型绝缘子(EI),这是由电子孔结合状态(激子)的自发形成引起的。我们揭示了在干净样品中的电荷中立点(CNP)处的固有绝缘态,并通过隧道光谱证实了该电荷中性绝缘子的相关性质。我们提供了反对频带绝缘体或局部绝缘体的替代方案的证据,并支持在清洁极限中存在EI阶段。这些观察结果为理解与非平凡拓扑相关的新型绝缘子的基础奠定了基础,并将单层WTE2识别为探索地面激子的量子阶段的有前途的候选人。
The interplay between topology and correlations can generate a variety of quantum phases, many of which remain to be explored. Recent advances have identified monolayer WTe2 as a promising material for doing so in a highly tunable fashion. The ground state of this two-dimensional (2D) crystal can be electrostatically tuned from a quantum spin Hall insulator (QSHI) to a superconductor. However, much remains unknown about the gap-opening mechanism of the insulating state. Here we report evidence that the QSHI is also an excitonic insulator (EI), arising from the spontaneous formation of electron-hole bound states (excitons). We reveal the presence of an intrinsic insulating state at the charge neutrality point (CNP) in clean samples and confirm the correlated nature of this charge-neutral insulator by tunneling spectroscopy. We provide evidence against alternative scenarios of a band insulator or a localized insulator and support the existence of an EI phase in the clean limit. These observations lay the foundation for understanding a new class of correlated insulators with nontrivial topology and identify monolayer WTe2 as a promising candidate for exploring quantum phases of ground-state excitons.