Guo Hongli, Zhang Xu, Lu Gang
Department of Physics and Astronomy, California State University, Northridge, Northridge, CA 91330-8268, USA.
Sci Adv. 2022 Oct 7;8(40):eabp9757. doi: 10.1126/sciadv.abp9757.
Using first-principles calculations, we predict that moiré excitons in twisted Janus heterobilayers could realize tunable and high-temperature Bose-Einstein condensation (BEC). The electric dipole in the Janus heterobilayers leads to charge-transfer interlayer and intralayer moiré excitons with exceptionally long lifetimes, in the absence of spacer layers. The electric dipole is also expected to enhance exciton-exciton repulsions at high exciton densities and can modulate moiré potentials that trap excitons for their condensation. The key parameters for exciton condensation, including exciton Bohr radius, binding energy, effective mass, and critical Mott density, are examined as a function of the twist angle. Last, exciton phase diagrams for the Janus heterobilayers are constructed from which one can estimate the BEC (>100 K) and superfluid (~30 K) transition temperatures. In addition to indirect interlayer excitons, we find that direct intralayer excitons can also condense at high temperatures, consistent with experiments.
通过第一性原理计算,我们预测扭曲的Janus异质双层中的莫尔激子可以实现可调谐的高温玻色 - 爱因斯坦凝聚(BEC)。在没有间隔层的情况下,Janus异质双层中的电偶极子会导致具有超长寿命的电荷转移层间和层内莫尔激子。预计电偶极子还会在高激子密度下增强激子 - 激子排斥力,并能调节捕获激子以实现凝聚的莫尔势。作为扭曲角的函数,研究了激子凝聚的关键参数,包括激子玻尔半径、结合能、有效质量和临界莫特密度。最后,构建了Janus异质双层的激子相图,从中可以估计BEC(>100 K)和超流体(~30 K)的转变温度。除了间接层间激子外,我们还发现直接层内激子也能在高温下凝聚,这与实验结果一致。