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First Principles Study on the Electronic Structure and Interface Stability of Hybrid Silicene/Fluorosilicene Nanoribbons

机译:杂化硅/氟硅碳纳米带电子结构和界面稳定性的第一性原理研究

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摘要

The interface stability of hybrid silicene/fluorosilicene nanoribbons (SFNRs) has been investigated by using density functional theory calculations, where fluorosilicene is the fully fluorinated silicene. It is found that the diffusion of F atoms at the zigzag and armchair interfaces of SFNRs is endothermic, and the corresponding minimum energy barriers are respectively 1.66 and 1.56 eV, which are remarkably higher than the minimum diffusion energy barrier of one F atom and two F atoms on pristine silicene 1.00 and 1.29 eV, respectively. Therefore, the thermal stability of SFNRs can be significantly enhanced by increasing the F diffusion barriers through silicene/fluorosilicene interface engineering. In addition, the electronic and magnetic properties of SFNRs are also investigated. It is found that the armchair SFNRs are nonmagnetic semiconductors, and the band gap of armchair SFNRs presents oscillatory behavior when the width of silicene part changing. For the zigzag SFNRs, the antiferromagnetic semiconducting state is the most stable one. This work provides fundamental insights for the applications of SFNRs in electronic devices.
机译:通过使用密度泛函理论计算,研究了杂化硅/氟硅纳米带(SFNRs)的界面稳定性,其中氟硅是完全氟化的硅。结果表明,F原子在SFNRs的锯齿形和扶手椅形界面上的扩散是吸热的,相应的最小能垒分别为1.66和1.56 eV,明显高于一个F原子和两个F原子的最小扩散能垒。原始硅烯上的原子分别为1.00和1.29 eV。因此,通过硅/氟硅界面工程增加F扩散势垒,可以显着提高SFNRs的热稳定性。此外,还研究了SFNRs的电子和磁性。发现扶手椅SFNR是非磁性半导体,当硅部分宽度改变时,扶手椅SFNR的带隙呈现出振荡行为。对于之字形SFNR,反铁磁半导体状态是最稳定的状态。这项工作为SFNR在电子设备中的应用提供了基础见解。

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