Chen Dongxue, Lian Zhen, Huang Xiong, Su Ying, Rashetnia Mina, Yan Li, Blei Mark, Taniguchi Takashi, Watanabe Kenji, Tongay Sefaattin, Wang Zenghui, Zhang Chuanwei, Cui Yong-Tao, Shi Su-Fei
Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu, Sichuan, China.
Department of Chemical and Biological Engineering, Rensselaer Polytechnic Institute, Troy, NY, 12180, USA.
Nat Commun. 2022 Aug 16;13(1):4810. doi: 10.1038/s41467-022-32493-9.
Moiré coupling in transition metal dichalcogenides (TMDCs) superlattices introduces flat minibands that enable strong electronic correlation and fascinating correlated states, and it also modifies the strong Coulomb-interaction-driven excitons and gives rise to moiré excitons. Here, we introduce the layer degree of freedom to the WSe/WS moiré superlattice by changing WSe from monolayer to bilayer and trilayer. We observe systematic changes of optical spectra of the moiré excitons, which directly confirm the highly interfacial nature of moiré coupling at the WSe/WS interface. In addition, the energy resonances of moiré excitons are strongly modified, with their separation significantly increased in multilayer WSe/monolayer WS moiré superlattice. The additional WSe layers also modulate the strong electronic correlation strength, evidenced by the reduced Mott transition temperature with added WSe layer(s). The layer dependence of both moiré excitons and correlated electronic states can be well described by our theoretical model. Our study presents a new method to tune the strong electronic correlation and moiré exciton bands in the TMDCs moiré superlattices, ushering in an exciting platform to engineer quantum phenomena stemming from strong correlation and Coulomb interaction.
过渡金属二硫属化物(TMDCs)超晶格中的莫尔耦合引入了平坦的微带,这使得强电子关联和迷人的关联态成为可能,同时它还改变了由强库仑相互作用驱动的激子,并产生了莫尔激子。在此,我们通过将WSe从单层变为双层和三层,将层自由度引入到WSe/WS莫尔超晶格中。我们观察到莫尔激子光谱的系统性变化,这直接证实了WSe/WS界面处莫尔耦合的高度界面性质。此外,莫尔激子的能量共振被强烈改变,在多层WSe/单层WS莫尔超晶格中它们的间距显著增加。额外的WSe层也调节了强电子关联强度,添加WSe层后莫特转变温度降低证明了这一点。我们的理论模型可以很好地描述莫尔激子和关联电子态的层依赖性。我们的研究提出了一种在TMDCs莫尔超晶格中调节强电子关联和莫尔激子能带的新方法,开创了一个用于设计源于强关联和库仑相互作用的量子现象的令人兴奋的平台。