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Tuning the band gap of silicene by functionalisation with naphthyl and anthracyl groups

机译:通过萘基和蒽基基团的官能化作用来调节硅的带隙

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Silicene is a relatively new material consisting of a two-dimensional sheet of silicon atoms. Functionalisation of silicene with different chemical groups has been suggested as a way to tune its electronic properties. In this work, density functional theory calculations and ab initio molecular dynamics simulations are used to examine the effects of functionalisation with naphthyl or anthracyl groups, which are two examples of small polycyclic aromatic hydrocarbons (PAHs). Different attachment positions on the naphthyl and anthracyl groups were compared, as well as different thicknesses of the silicene nanosheet. It was found that the carbon attachment position farthest from the bond fusing the aromatic rings gave the more stable structures for both functional groups. All structures showed direct band gaps, with tuning of the band gap being achievable by increasing the length of the PAH or the thickness of the silicene. Hence, modifying the functional group or thickness of the silicene can both be used to alter the electronic properties of silicene making it a highly promising material for use in future electronic devices and sensors. (C) 2016 AIP Publishing LLC.
机译:硅树脂是一种相对较新的材料,由二维硅原子片组成。已经建议使用具有不同化学基团的硅官能化来调节其电子性能。在这项工作中,使用密度泛函理论计算和从头算分子动力学模拟来研究萘基或蒽基基团的官能化作用,萘基或蒽基是小多环芳烃(PAH)的两个例子。比较了萘基和蒽基上不同的附着位置,以及不同厚度的硅纳米片。已发现,距离与芳环融合的键最远的碳连接位置为两个官能团提供了更稳定的结构。所有结构都显示出直接的带隙,可以通过增加PAH的长度或硅的厚度来调整带隙。因此,改变硅的官能团或厚度都可以用于改变硅的电子性能,从而使其成为在未来的电子设备和传感器中使用的极有前途的材料。 (C)2016 AIP出版有限责任公司。

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