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Monolayer Ti2C MXene: manipulating magnetic properties and electronic structures by an electric field

机译:单层TI2C MXENE:通过电场操纵磁性和电子结构

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Two-dimensional (2D) layered Ti2C MXene has been synthesized experimentally, and the magnetism of monolayer Ti2C MXene has been predicted theoretically. In this study, based on first-principles calculations, five magnetic configurations of monolayer Ti2C were constructed to predict the magnetic ground state. We have found that the antiferromagnetic (AFM) state has the lowest energy. By applying an external electric field, monolayer Ti2C changes from an AFM semiconductor to a ferrimagnetic (FIM) semiconductor, half-metal, magnetic metal, non-magnetic (NM) metal, and NM semiconductor. When the electric field increases beyond a certain value, the magnetic moments of Ti atoms sharply decrease. With the increase in the electric field, the effective masses decrease significantly, carrier mobility increases and conductivity increases. The magnetic anisotropy energies were calculated and the results showed that the out-of-plane direction was the magnetic easy axis. Using the mean-field approximation method, the Neel temperature of monolayer Ti2C is estimated to be 50 K. By applying an electric field, the Neel temperature significantly decreases, which shows that the electric field can effectively reduce the high Neel temperature. Therefore, our research suggests that the magnetic and electronic properties of 2D materials can be manipulated by an external electric field, which provides a feasible direction for the tuning of nanomagnetic devices.
机译:实验合成二维(2D)层状Ti2C mxene,在理论上已经预测了单层Ti2C mxene的磁性。在本研究中,基于第一原理计算,构建了五个单层Ti2C的五种磁共配置以预测磁场状态。我们发现反铁磁(AFM)状态具有最低能量。通过施加外部电场,单层TI2C从AFM半导体改变到FerrimageTic(FIM)半导体,半金属,磁性金属,非磁性(NM)和NM半导体。当电场增加超过一定值时,Ti原子的磁矩急剧下降。随着电场的增加,有效质量显着降低,载流子迁移率增加,导电性增加。计算磁各向异性能量,结果表明,平面外方向是磁性易轴。使用平均场近似方法,估计单层Ti2c的Neel温度为50k。通过施加电场,Neel温度显着降低,这表明电场可以有效地降低高新型温度。因此,我们的研究表明,可以通过外部电场操纵2D材料的磁性和电子性质,其为纳米磁性装置的调谐提供可行的方向。

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