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DFT study of defects in graphene

机译:石墨烯缺陷的DFT研究

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Defects or imperfections in materials could be extremely useful at the nanoscale level since they could be exploited to modify the properties of nanomaterials for various practical applications. In this paper ab-initio calculations have been performed to study the stability, structural distortions and magnetism caused by defects and dopants in graphene sheet by the creation of vacancies, the inclusion of boron and nitrogen atoms and coexistence of both. All the calculations have been performed by using SIESTA (Spanish Initiative for Electronic Simulations with Thousands of Atoms) code based on density functional theory. Structural optimization shows that introducing a carbon vacancy into a graphene sheet changes the structural distribution of the neighbor atoms. In the case of coexistence of boron (nitrogen) atoms and vacancy, the modified graphene is magnetised only when B (N) atoms locate away from vacancies. These interesting results provide the possibility of tuning the properties according to application of graphene by carefully choosing the shape and size of defects.
机译:材料中的缺陷或缺陷可能在纳米级水平上非常有用,因为它们可以被剥削以改变纳米材料的性质以进行各种实际应用。在本文中,已经进行了AB-Initio计算,以研究石墨烯片中的缺陷和掺杂剂通过产生空位,包括硼和氮原子和两者的共存而引起的缺陷和掺杂剂引起的稳定性,结构扭曲和磁性。所有计算都是通过使用Siesta(西班牙语仿真来进行数千个原子的电子模拟)代码来执行所有计算,基于密度泛函理论。结构优化表明,将碳空位引入石墨烯片改变邻居原子的结构分布。在硼(氮气)原子和空位的情况下,仅当B(n)原子远离空位时,才能磁化改性石墨烯。这些有趣的结果通过小心地选择缺陷的形状和尺寸来提供根据石墨烯的应用调整性质的可能性。

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