Tran Kha, Moody Galan, Wu Fengcheng, Lu Xiaobo, Choi Junho, Kim Kyounghwan, Rai Amritesh, Sanchez Daniel A, Quan Jiamin, Singh Akshay, Embley Jacob, Zepeda André, Campbell Marshall, Autry Travis, Taniguchi Takashi, Watanabe Kenji, Lu Nanshu, Banerjee Sanjay K, Silverman Kevin L, Kim Suenne, Tutuc Emanuel, Yang Li, MacDonald Allan H, Li Xiaoqin
Department of Physics and Center for Complex Quantum Systems, The University of Texas at Austin, Austin, TX, USA.
National Institute of Standards & Technology, Boulder, CO, USA.
Nature. 2019 Mar;567(7746):71-75. doi: 10.1038/s41586-019-0975-z. Epub 2019 Feb 25.
Recent advances in the isolation and stacking of monolayers of van der Waals materials have provided approaches for the preparation of quantum materials in the ultimate two-dimensional limit. In van der Waals heterostructures formed by stacking two monolayer semiconductors, lattice mismatch or rotational misalignment introduces an in-plane moiré superlattice. It is widely recognized that the moiré superlattice can modulate the electronic band structure of the material and lead to transport properties such as unconventional superconductivity and insulating behaviour driven by correlations; however, the influence of the moiré superlattice on optical properties has not been investigated experimentally. Here we report the observation of multiple interlayer exciton resonances with either positive or negative circularly polarized emission in a molybdenum diselenide/tungsten diselenide (MoSe/WSe) heterobilayer with a small twist angle. We attribute these resonances to excitonic ground and excited states confined within the moiré potential. This interpretation is supported by recombination dynamics and by the dependence of these interlayer exciton resonances on twist angle and temperature. These results suggest the feasibility of engineering artificial excitonic crystals using van der Waals heterostructures for nanophotonics and quantum information applications.
范德华材料单层的分离和堆叠方面的最新进展为在极限二维极限下制备量子材料提供了方法。在由两个单层半导体堆叠形成的范德华异质结构中,晶格失配或旋转失准会引入面内莫尔超晶格。人们普遍认识到,莫尔超晶格可以调节材料的电子能带结构,并导致诸如由关联驱动的非常规超导和绝缘行为等输运性质;然而,莫尔超晶格对光学性质的影响尚未通过实验进行研究。在此,我们报告了在具有小扭转角 的二硒化钼/二硒化钨(MoSe₂/WSe₂)异质双层中观察到具有正或负圆偏振发射的多个层间激子共振。我们将这些共振归因于局限在莫尔势内的激子基态和激发态。这种解释得到了复合动力学以及这些层间激子共振对扭转角和温度的依赖性的支持。这些结果表明了利用范德华异质结构设计人工激子晶体用于纳米光子学和量子信息应用的可行性。