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Periodic potentials in hybrid van der Waals heterostructures formed by supramolecular lattices on graphene

机译:石墨烯上超分子晶格形成的杂化范德华异质结构中的周期性电势

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摘要

The rise of 2D materials made it possible to form heterostructures held together by weak interplanar van der Waals interactions. Within such van der Waals heterostructures, the occurrence of 2D periodic potentials significantly modifies the electronic structure of single sheets within the stack, therefore modulating the material properties. However, these periodic potentials are determined by the mechanical alignment of adjacent 2D materials, which is cumbersome and time-consuming. Here we show that programmable 1D periodic potentials extending over areas exceeding 104?nm2 and stable at ambient conditions arise when graphene is covered by a self-assembled supramolecular lattice. The amplitude and sign of the potential can be modified without altering its periodicity by employing photoreactive molecules or their reaction products. In this regard, the supramolecular lattice/graphene bilayer represents the hybrid analogue of fully inorganic van der Waals heterostructures, highlighting the rich prospects that molecular design offers to create ad hoc materials.
机译:2D材料的兴起使得形成微弱的平面范德华相互作用将异质结构结合在一起成为可能。在这种范德华异质结构中,二维周期性电势的出现极大地改变了堆叠内单张电子结构,从而调节了材料性能。但是,这些周期性电势是由相邻2D材料的机械对齐确定的,这既麻烦又费时。在这里,我们显示了当石墨烯被自组装的超分子晶格覆盖时,可编程的一维周期性电势会扩展到超过10 4 ?nm 2 的区域并且在环境条件下稳定。通过使用光反应性分子或其反应产物,可以改变电势的幅度和符号而不改变其周期性。在这方面,超分子晶格/石墨烯双层代表了完全无机的范德华异质结构的杂合类似物,突显了分子设计为创造特殊材料提供的丰富前景。

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