论文标题

等词扩展的哈伯德模型模拟器中的可调量子关键点

Tunable quantum criticalities in an isospin extended Hubbard model simulator

论文作者

Li, Qiao, Cheng, Bin, Chen, Moyu, Xie, Bo, Xie, Yongqin, Wang, Pengfei, Chen, Fanqiang, Liu, Zenglin, Watanabe, Kenji, Taniguchi, Takashi, Liang, Shi-Jun, Wang, Da, Wang, Chenjie, Wang, Qiang-Hua, Liu, Jianpeng, Miao, Feng

论文摘要

研究强电子相关性一直是推动凝结物理学的前沿的必不可少的驱动力。特别是,在相关驱动的量子相变(QPTS)附近,多个自由度的量子关键波动促进了异国情调的多体状态和兰道框架以外的量子关键行为。最近,范德华材料的Moiré异质结构已被证明是一个高度可调的量子平台,用于探索引人入胜的巨大相关量子物理学。在这里,我们报告了在扩展哈伯德模型的实验模拟器中观察到可调量子临界点,该模拟器具有旋转的valley isospins,该模拟器在手性堆叠的扭曲的双双层石墨烯中产生。缩放分析表明,量子两阶段的临界性表现出两个不同的量子临界点,因为广义的wigner晶体通过改变位移场而变为费米液体,这表明临界中间相的出现。随着高平行磁场的应用,量子两阶段的临界点会演变成量子伪临界。在这种伪临界时,我们发现量子临界缩放率仅在临界温度以上有效,表明其中弱的一阶QPT。我们的结果表明,具有高度可调的固态模拟器,具有多个自由度的复杂相互作用,以探索异国情调的量子关键状态和行为。

Studying strong electron correlations has been an essential driving force for pushing the frontiers of condensed matter physics. In particular, in the vicinity of correlation-driven quantum phase transitions (QPTs), quantum critical fluctuations of multiple degrees of freedom facilitate exotic many-body states and quantum critical behaviors beyond Landau's framework. Recently, moiré heterostructures of van der Waals materials have been demonstrated as a highly tunable quantum platform for exploring fascinating strongly correlated quantum physics. Here, we report the observation of tunable quantum criticalities in an experimental simulator of extended Hubbard model with spin-valley isospins arising in chiral-stacked twisted double bilayer graphene. Scaling analysis shows a quantum two-stage criticality manifesting two distinct quantum critical points as the generalized Wigner crystal transits to a Fermi liquid by varying the displacement field, suggesting the emergence of a critical intermediate phase. The quantum two-stage criticality evolves into a quantum pseudo criticality as a high parallel magnetic field is applied. In such pseudo criticality, we find that the quantum critical scaling is only valid above a critical temperature, indicating a weak first-order QPT therein. Our results demonstrate a highly tunable solid-state simulator with intricate interplay of multiple degrees of freedom for exploring exotic quantum critical states and behaviors.

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