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Temperature-triggered chemical switching growth of in-plane and vertically stacked graphene-boron nitride heterostructures

机译:平面和垂直堆叠的石墨烯-氮化硼异质结构的温度触发化学开关生长

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摘要

In-plane and vertically stacked heterostructures of graphene and hexagonal boron nitride (h-BN-G and G/h-BN, respectively) are both recent focuses of graphene research. However, targeted synthesis of either heterostructure remains a challenge. Here, via chemical vapour deposition and using benzoic acid precursor, we have achieved the selective growth of h-BN-G and G/h-BN through a temperature-triggered switching reaction. The perfect in-plane h-BN-G is characterized by scanning tunnelling microscopy (STM), showing atomically patched graphene and h-BN with typical zigzag edges. In contrast, the vertical alignment of G/h-BN is confirmed by unique lattice-mismatch-induced moiré patterns in high-resolution STM images, and two sets of aligned selected area electron diffraction spots, both suggesting a van der Waals epitaxial mechanism. The present work demonstrates the chemical designability of growth process for controlled synthesis of graphene and h-BN heterostructures. With practical scalability, high uniformity and quality, our approach will promote the development of graphene-based electronics and optoelectronics.
机译:石墨烯和六方氮化硼(分别为h-BN-G和G / h-BN)的面内和垂直堆叠异质结构都是石墨烯研究的最新重点。然而,任一异质结构的靶向合成仍然是一个挑战。在这里,通过化学气相沉积并使用苯甲酸前体,我们通过触发温度的开关反应实现了h-BN-G和G / h-BN的选择性生长。完美的面内h-BN-G的特征在于扫描隧道显微镜(STM),显示原子修补的石墨烯和具有典型之字形边缘的h-BN。相比之下,G / h-BN的垂直排列由高分辨率STM图像中独特的晶格失配引起的莫尔图案和两组排列的选定区域电子衍射斑所证实,均暗示了范德华外延机制。本工作证明了石墨烯和h-BN异质结构受控合成的生长过程的化学可设计性。凭借实用的可扩展性,高均匀性和高质量,我们的方法将促进基于石墨烯的电子和光电技术的发展。

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