论文标题

Moiré超级晶格中的光引起的铁磁性

Light-Induced Ferromagnetism in Moiré Superlattices

论文作者

Wang, Xi, Xiao, Chengxin, Park, Heonjoon, Zhu, Jiayi, Wang, Chong, Taniguchi, Takashi, Watanabe, Kenji, Yan, Jiaqiang, Xiao, Di, Gamelin, Daniel R., Yao, Wang, Xu, Xiaodong

论文摘要

载体之间的多体相互作用位于相关物理的核心。调整此类相互作用的能力将为需求访问和控制复杂的电子相图的可能性。最近,由二维材料形成的Moiré超晶格已经成为量子工程这种现象的有前途的平台。 Moiré系统的功率在于其物理参数的高可调性,通过调整层扭转角,电场,莫伊尔载体填充和层间耦合。在这里,我们报告说,光激发可以大致调整Moiré捕获的载体之间的自旋旋转相互作用,从而在高温下的少量掺杂范围内在WS2/WSE2Moiré超晶格中产生铁磁顺序。接近填充因子V = -1/3(即每个三个Moiré单位细胞一个孔),随着激发子共振的激发能力增加,反射磁性圆形二色症(RMCD)信号作为磁场的功能,是磁场的功能,是Ferromagnetism的Hallmark。磁滞回路一直持续到电荷中立,并且随着Moiré超晶格的逐渐填充,其形状会演变,表明磁接地态性质的变化。观察到的现象指向了一种机制,在这种机制中,流动的光兴奋的激子介导了莫伊尔捕获的孔之间的交换耦合。这种激子介导的相互作用的范围比莫伊尔捕获孔之间的直接耦合的范围更长,因此,即使在光激发下的稀释孔状态下,磁性也可能出现。这一发现为Moiré量子问题的丰富多体哈密顿量增加了一个新的动态调音旋钮。

Many-body interactions between carriers lie at the heart of correlated physics. The ability to tune such interactions would open the possibility to access and control complex electronic phase diagrams on demand. Recently, moiré superlattices formed by two-dimensional materials have emerged as a promising platform for quantum engineering such phenomena. The power of the moiré system lies in the high tunability of its physical parameters by tweaking layer twist angle, electrical field, moiré carrier filling, and interlayer coupling. Here, we report that optical excitation can drastically tune the spin-spin interactions between moiré trapped carriers, resulting in ferromagnetic order in WS2/WSe2 moiré superlattices over a small range of doping at elevated temperatures. Near the filling factor v = -1/3 (i.e., one hole per three moiré unit cells), as the excitation power at the exciton resonance increases, a well-developed hysteresis loop emerges in the reflective magnetic circular dichroism (RMCD) signal as a function of magnetic field, a hallmark of ferromagnetism. The hysteresis loop persists down to charge neutrality, and its shape evolves as the moiré superlattice is gradually filled, indicating changes of magnetic ground state properties. The observed phenomenon points to a mechanism in which itinerant photo-excited excitons mediate exchange coupling between moiré trapped holes. This exciton-mediated interaction can be of longer range than direct coupling between moiré trapped holes, and thus magnetic order can arise even in the dilute hole regime under optical excitation. This discovery adds a new and dynamic tuning knob to the rich many-body Hamiltonian of moiré quantum matter.

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