双层半导体中层间电子相干的光学特征

Xiaoling Liu, Nadine Leisgang, Pavel E. Dolgirev, Alexander A. Zibrov, Jiho Sung, Jue Wang, Takashi Taniguchi, Kenji Watanabe, Valentin Walther, Hongkun Park, Eugene Demler, Philip Kim, Mikhail D. Lukin
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摘要

原子级薄过渡金属二钙化层中出现的强相关电子现象是凝聚态物理学中一个令人兴奋的前沿领域,其例子包括双层超导性(bilayersuperconductivity)、电子维尼晶体(electronic Wignercrystals)、激子凝聚(exciton condensation)以及正在进行的探索(wang2019evidence,ma2021strongly,shi2022bilayer)。在这里,我们通过实验研究了间接激子在自然生长的 MoS$_2$ 原子层中的特性,该原子层集成在双栅器件结构中,允许对电子密度和面外电场进行独立控制。在层间电子隧穿微不足道的条件下,当电子掺杂到样品中时,我们观察到两个具有相反偶极子的激子发生了杂化,显示出不同于传统水平穿越和反穿越的异常行为。我们发现,这些观察结果可以用激子之间的静态随机耦合来解释,这种耦合随电子密度的增加而增加,随温度的升高而减小。我们认为,这种现象表明了以层间电子相干形式存在的空间波动有序参数、这一理论预测的多体状态尚未在量子霍尔效应之外的实验中得到明确证实~~cite{sarma2008perspectives,spielman2000resonantly,kellogg2004vanishing,kellogg2002observation,spielman2001observation,fertig1989energy,shi2022bilayer}。讨论了我们的发现对未来实验和量子光学应用的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical signatures of interlayer electron coherence in a bilayer semiconductor
Emergent strongly-correlated electronic phenomena in atomically-thin transition metal dichalcogenides are an exciting frontier in condensed matter physics, with examples ranging from bilayer superconductivity~\cite{zhao2023evidence} and electronic Wigner crystals~\cite{smolenski2021signatures,zhou2021bilayer} to the ongoing quest for exciton condensation~\cite{wang2019evidence,ma2021strongly,shi2022bilayer}. Here, we experimentally investigate the properties of indirect excitons in naturally-grown MoS$_2$-homobilayer, integrated in a dual-gate device structure allowing independent control of the electron density and out-of-plane electric field. Under conditions when electron tunneling between the layers is negligible~\cite{pisoni2019absence}, upon electron doping the sample, we observe that the two excitons with opposing dipoles hybridize, displaying unusual behavior distinct from both conventional level crossing and anti-crossing. We show that these observations can be explained by static random coupling between the excitons, which increases with electron density and decreases with temperature. We argue that this phenomenon is indicative of a spatially fluctuating order parameter in the form of interlayer electron coherence, a theoretically predicted many-body state~\cite{zheng1997exchange} that has yet to be unambiguously established experimentally outside of the quantum Hall regime~\cite{sarma2008perspectives,spielman2000resonantly,kellogg2004vanishing,kellogg2002observation,spielman2001observation,fertig1989energy,shi2022bilayer}. Implications of our findings for future experiments and quantum optics applications are discussed.
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