论文标题

扭曲WSE2中的可调双层哈伯德模型物理

Tunable bilayer Hubbard model physics in twisted WSe2

论文作者

Xu, Yang, Kang, Kaifei, Watanabe, Kenji, Taniguchi, Takashi, Mak, Kin Fai, Shan, Jie

论文摘要

具有平坦电子带的Moiré材料为强相关物理和拓扑的研究提供了高度可控的量子系统。特别是,具有较大带偏移的半导体过渡金属二分法元素(TMD)的角度对准的杂波构造者实现了单频段哈伯德模型。介绍新的自由度将有望促进更丰富的相互作用,使Hund的物理学,Interlayer Incresciton凝结和新的超导配对机制仅举几例。在这里,我们报告了在扭曲的AB-HOMOBILAYER WSE2中的竞争电子订单,该订单在漏洞的较弱的层间跳跃极限中实现了双层Hubbard模型。我们表征了MoiréBiLayer的电荷顺序,层极化和磁化,并通过激子传感和磁铁圆形二色性测量受到平面外电场和磁场的影响。通过通过电场极偏振孔,我们观察到从兴奋子绝缘子到电荷转移的孔密度$ν$ = 1(在Moiré密度单位)的孔中,这是从顺磁性的过渡到$ n $ n layertator $ n layertation $ n layertator n secoots $ n secection parmagnetic to parmagnetic to parmagnetic to partermagnetic电荷传递器的过渡。电荷和旋转与外部磁场的独特耦合也表现出巨大的磁电响应。我们的结果建立了一个新的固态模拟器,用于由BiLayer Hubbard模型描述的强相关物理学中的问题。

Moiré materials with flat electronic bands provide a highly controllable quantum system for studies of strong-correlation physics and topology. In particular, angle-aligned heterobilayers of semiconducting transition metal dichalcogenides (TMDs) with large band offset realize the single-band Hubbard models. Introduction of a new layer degree of freedom is expected to foster richer interactions, enabling Hund's physics, interlayer exciton condensation and new superconducting pairing mechanisms to name a few. Here, we report competing electronic orders in twisted AB-homobilayer WSe2, which realizes a bilayer Hubbard model in the weak interlayer hopping limit for holes. We characterize the charge order, layer polarization and magnetization of the moiré bilayer, subjected to an out-of-plane electric and magnetic field, by exciton sensing and magneto circular dichroism measurements. By layer-polarizing holes via the electric field, we observe a crossover from an excitonic insulator to a charge-transfer insulator at hole density of $ν$=1 (in unit of moiré density), a transition from a paramagnetic to an antiferromagnetic charge-transfer insulator at $ν$=2, and evidence for a layer-selective Mott insulator at 1<$ν$<2. The unique coupling of charge and spin to external fields also manifests a giant magneto-electric response. Our results establish a new solid-state simulator for problems in strong-correlation physics that are described by bilayer Hubbard models.

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