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Transparent half metallic g-C4N3 nanotubes: potential multifunctional applications for spintronics and optical devices

机译:透明的半金属g-C4N3纳米管:自旋电子学和光学器件的潜在多功能应用

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摘要

Multifunctional material brings many interesting issues because of various potential device applications. Using first principles calculations, we predict that the graphitic carbon nitride (g-C4N3) nanotubes can display multifunctional properties for both spintronics and optical device applications. Very interestingly, armchair tubes (n, n) with n = 2, 3, 4, 5, 6 and (5, 0) zigzag tubes are found to be half metallic, while zigzag tubes (n, 0) with n = 4, 6 show an antiferromagnetic ground state with band gaps. However, larger zigzag tubes of (7, 0), (8, 0), and (10, 0) are turned out to be half metallic. Along with the half metallic behavior of the tubes, those tubes seem to be optically transparent in the visible range. Due to these magnetic and optical properties, we suggest that the g-C4N3 nanotubes (CNNTs) can be used for both ideal spintronics and transparent electrode materials. We also explored the stability of magnetic state and nanotube structure using ab initio molecular dynamics. The CNNTs were found to be thermally stable and the magnetic moment was robust against the structural deformation at 300 K. Overall, our theoretical prediction in one dimensional CNNTs may provide a new physics in spintronics and also in other device applications because of potential multifunctional properties.
机译:由于各种潜在的设备应用,多功能材料带来了许多有趣的问题。使用第一性原理计算,我们预测石墨化碳氮化碳(g-C4N3)纳米管可以显示出自旋电子学和光学器件应用的多功能特性。非常有趣的是,发现n = 2、3、4、5、6和(5,0)的曲折管(n,n)是半金属的,而n = 4的曲折管(n,0)是金属的。图6示出了具有带隙的反铁磁基态。但是,事实证明,较大的(7,0),(8,0)和(10,0)的曲折管是半金属的。连同灯管的半金属特性,这些灯管在可见光范围内似乎是光学透明的。由于这些磁性和光学特性,我们建议g-C4N3纳米管(CNNT)可用于理想的自旋电子学和透明电极材料。我们还使用从头算分子动力学方法探索了磁态和纳米管结构的稳定性。 CNNT被发现具有热稳定性,并且磁矩对300 K的结构变形具有很强的抵抗力。总体而言,由于潜在的多功能特性,我们在一维CNNT的理论预测可能为自旋电子学以及其他器件应用提供新的物理学。

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