论文标题

基于范德华2D材料的超级晶格

Superlattices based on van der Waals 2D materials

论文作者

Ryu, Yu Kyoung, Frisenda, Riccardo, Castellanos-Gomez, Andres

论文摘要

二维(2D)材料与其大量对应物相比,具有许多改进的机械,光学,电子性能。这些材料的分裂表面上没有悬空键,可以将不同的2D材料组合到范德华异质结构中,以制造P-N连接,光电探测器,2D-2D欧姆触点,显示出意外的性能。这些有趣的结果定期在全面的评论中总结。一种进一步量身定制其性质并观察新量子现象的策略在于制造超晶格,其晶胞由两种不同的2D材料或受周期性扰动的2D材料形成,每个组件都会造成不同特征。此外,在基于2D材料的超晶格中,范德华力介导的层之间的层间相互作用构成了一个关键参数,以调整超晶格的全局性能。上述因素反映了设计基于范德华2D材料超晶格的无数组合的潜力。在本专题文章中,我们详细说明了基于2D材料的超级晶格的最新作品,并描述了制造它们的不同方法,被归类为垂直堆叠,与原子或分子的插入,Moiré图案,劳累工程和光刻设计。我们还旨在突出每种超级晶格的某些特定应用程序。

Two-dimensional (2D) materials exhibit a number of improved mechanical, optical, electronic properties compared to their bulk counterparts. The absence of dangling bonds in the cleaved surfaces of these materials allows combining different 2D materials into van der Waals heterostructures to fabricate p-n junctions, photodetectors, 2D-2D ohmic contacts that show unexpected performances. These intriguing results are regularly summarized in comprehensive reviews. A strategy to tailor their properties even further and to observe novel quantum phenomena consists in the fabrication of superlattices whose unit cell is formed either by two dissimilar 2D materials or by a 2D material subjected to a periodical perturbation, each component contributing with different characteristics. Furthermore, in a 2D materials-based superlattice, the interlayer interaction between the layers mediated by van der Waals forces constitutes a key parameter to tune the global properties of the superlattice. The above-mentioned factors reflect the potential to devise countless combinations of van der Waals 2D materials based superlattices. In the present feature article, we explain in detail the state-of-the-art of 2D materials-based superlattices and we describe the different methods to fabricate them, classified as vertical stacking, intercalation with atoms or molecules, moiré patterning, strain engineering and lithographic design. We also aim to highlight some of the specific applications for each type of superlattices.

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