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二维共轭聚合物网络中的狄拉克锥。

Dirac Cones in two-dimensional conjugated polymer networks.

机构信息

IMN, CNRS UMR6502, Université de Nantes, 2 rue de la Houssiniere, BP32229, 44322 Nantes, France.

出版信息

Nat Commun. 2014 Dec 18;5:5842. doi: 10.1038/ncomms6842.

Abstract

Linear electronic band dispersion and the associated Dirac physics has to date been limited to special-case materials, notably graphene and the surfaces of three-dimensional (3D) topological insulators. Here we report that it is possible to create two-dimensional fully conjugated polymer networks with corresponding conical valence and conduction bands and linear energy dispersion at the Fermi level. This is possible for a wide range of polymer types and connectors, resulting in a versatile new family of experimentally realisable materials with unique tuneable electronic properties. We demonstrate their stability on substrates and possibilities for doping and Dirac cone distortion. Notably, the cones can be maintained in 3D-layered crystals. Resembling covalent organic frameworks, these materials represent a potentially exciting new field combining the unique Dirac physics of graphene with the structural flexibility and design opportunities of organic-conjugated polymer chemistry.

摘要

线性电子能带色散和相关的狄拉克物理迄今为止仅限于特殊材料,特别是石墨烯和三维(3D)拓扑绝缘体的表面。在这里,我们报告说,有可能创建具有相应锥形价带和导带以及费米能级处线性能色散的二维全共轭聚合物网络。对于广泛的聚合物类型和连接器来说,这是可能的,从而产生了具有独特可调谐电子特性的新型多功能实验可实现材料。我们证明了它们在衬底上的稳定性以及掺杂和狄拉克锥变形的可能性。值得注意的是,这些锥体可以在 3D 层状晶体中保持。这些材料类似于共价有机骨架,它们代表了一个令人兴奋的新领域,将石墨烯的独特狄拉克物理与有机共轭聚合物化学的结构灵活性和设计机会相结合。

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