论文标题

在边缘扭曲的六角硼硝酸盐中的电荷偏振界面超级晶格

Charge-polarized interfacial superlattices in marginally twisted hexagonal boron nitride

论文作者

Woods, C. R., Ares, P., Nevison-Andrews, H., Holwill, M. J., Fabregas, R., Guinea, F., Geim, A. K., Novoselov, K. S., Walet, N. R., Fumagalli, L.

论文摘要

当将二维晶体近距离接近时,它们的相互作用会导致电子光谱和局部晶体结构的强烈重建。这种重建很大程度上取决于两个晶体之间的扭曲角度,并且由于在石墨烯和过渡金属二分法中产生的新有趣的电子和光学特性而受到了越来越多的关注。同样,新型且潜在的有用特性有望在绝缘晶体中出现。在这里,我们研究了以小扭曲角堆叠的六角硼(HBN)的两个绝缘晶体。使用静电显微镜,我们观察到在三角形超晶格中排列的铁电域,具有较大的表面电势,其域的尺寸和方向以及扭曲的HBN晶体的厚度独立。该观察结果归因于界面弹性变形,这些变形导致由硼对成对造成的硼和氮原子形成的平面外偏光偶极子密度较大的结构域。与我们的建模一致,这有效地创建了一个在相邻域中具有相反极化(BN和NB)偶极子的双层铁电性。展示的静电域及其超晶格在设计新颖的Van der Waals异质结构时提供了许多新的可能性。

When two-dimensional crystals are brought into close proximity, their interaction results in strong reconstruction of electronic spectrum and local crystal structure. Such reconstruction strongly depends on the twist angle between the two crystals and has received growing attention due to new interesting electronic and optical properties that arise in graphene and transitional metal dichalcogenides. Similarly, novel and potentially useful properties are expected to appear in insulating crystals. Here we study two insulating crystals of hexagonal boron nitride (hBN) stacked at a small twist angle. Using electrostatic force microscopy, we observe ferroelectric-like domains arranged in triangular superlattices with a large surface potential that is independent on the size and orientation of the domains as well as the thickness of the twisted hBN crystals. The observation is attributed to interfacial elastic deformations that result in domains with a large density of out-of-plane polarized dipoles formed by pairs of boron and nitrogen atoms belonging to the opposite interfacial surfaces. This effectively creates a bilayer-thick ferroelectric with oppositely polarized (BN and NB) dipoles in neighbouring domains, in agreement with our modelling. The demonstrated electrostatic domains and their superlattices offer many new possibilities in designing novel van der Waals heterostructures.

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