Departamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, Madrid, E-28049, Spain.
Departamento de Física de Materiales, Universidad Autónoma de Madrid, Madrid, E-28049, Spain.
Small. 2023 Apr;19(17):e2207217. doi: 10.1002/smll.202207217. Epub 2023 Jan 29.
In-plane heterostructures of graphene and hexagonal boron nitride (h-BN) exhibit exceptional properties, which are highly sensitive to the structure of the alternating domains. Nevertheless, achieving accurate control over their structural properties, while keeping a high perfection at the graphene-h-BN boundaries, still remains a challenge. Here, the growth of lateral heterostructures of graphene and h-BN on Rh(110) surfaces is reported. The choice of the 2D material, grown firstly, determines the structural properties of the whole heterostructure layer, allowing to have control over the rotational order of the domains. The atomic-scale observation of the boundaries demonstrates a perfect lateral matching. In-plane heterostructures floating over an oxygen layer have been successfully obtained, enabling to observe intervalley scattering processes in graphene regions. The high tuning capabilities of these heterostructures, along with their good structural quality, even around the boundaries, suggest their usage as test beds for fundamental studies aiming at the development of novel nanomaterials with tailored properties.
石墨烯和六方氮化硼(h-BN)的面内异质结构表现出优异的性质,这些性质对交替畴的结构高度敏感。然而,要实现对其结构性质的精确控制,同时保持石墨烯-h-BN 边界的高度完美,仍然是一个挑战。在这里,报道了在 Rh(110)表面上生长的石墨烯和 h-BN 的横向异质结构。首先生长的二维材料的选择决定了整个异质结构层的结构性质,从而可以控制畴的旋转顺序。边界的原子尺度观察表明了完美的横向匹配。已经成功获得了在氧层上漂浮的面内异质结构,从而能够在石墨烯区域观察到谷间散射过程。这些异质结构具有很高的可调谐性,而且即使在边界周围,其结构质量也很好,这表明它们可用作基础研究的测试平台,旨在开发具有定制性质的新型纳米材料。