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First-principles investigation of graphitic carbon nitride monolayer with embedded Fe atom

机译:嵌入铁原子的石墨氮化碳单层的第一性原理研究

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Density-functional theory (DFT) calculations with spin-polarized generalized gradient approximation and Hubbard U correction are carried out to investigate the mechanical, structural, electronic and magnetic properties of graphitic heptazine with embedded Fe atom under bi-axial tensile strain and applied perpendicular electric field. It was found that the binding energy of heptazine with embedded Fe atom system decreases as larger tensile strain is applied, while it increases as larger electric field strength is applied. Our calculations also predict a band gap at a peak value of 5% tensile strain but at expense of the structural stability of the system. The band gap open up at 5% tensile strain is due to distortion in the structure caused by the repulsive effect in the cavity between the lone pairs of the edge nitrogen atoms and d(xy)/d(X2-y2) orbital of Fe atom, forcing the unoccupied P-z-orbital is forced to shift toward higher energy. The electronic and magnetic properties of the heptazine with embedded Fe system under perpendicular electric field up to a peak value of 8 Vm is also well preserved despite an obvious buckled structure. Such properties are desirable for diluted magnetic semiconductors, spintronics, and sensing devices. (c) 2017 Elsevier B.V. All rights reserved.
机译:利用自旋极化广义梯度近似和Hubbard U校正进行密度泛函理论(DFT)计算,研究了嵌入Fe原子的石墨庚嗪在双轴拉伸应变和垂直电场作用下的力学,结构,电子和磁性。领域。研究发现,随着施加更大的拉伸应变,庚嗪与嵌入的Fe原子体系的结合能降低,而随着施加更大的电场强度,则增加。我们的计算还预测了在5%拉伸应变峰值处的带隙,但会牺牲系统的结构稳定性。带隙在5%拉伸应变下开放是由于边缘氮原子的孤对与Fe原子的d(xy)/ d(X2-y2)轨道之间的排斥作用所引起的结构变形,迫使无人的Pz轨道移向更高的能量。尽管具有明显的弯曲结构,但在垂直电场下(最高峰值为8 V / nm的情况下),嵌入Fe系统的庚嗪的电子和磁性也得到很好的保留。对于稀释的磁性半导体,自旋电子器件和感测设备,此类特性是理想的。 (c)2017 Elsevier B.V.保留所有权利。

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