Department of Materials Science, Indian Association for the Cultivation of Science, Kolkata 700032, India.
J Chem Phys. 2010 Apr 28;132(16):164704. doi: 10.1063/1.3381183.
Using state of the art spin polarized density functional theory, we report the stability and structural aspects of small magnetic clusters M(4) (M = Fe, Co, and Ni) inside an inert boron nitride nanotube [BNNT(10,0)]. The geometry optimization was carried out starting with various possible configurations [one-dimensional (1D) linear chain, two-dimensional (2D) planar rhombus, and three-dimensional (3D) tetrahedral], and the results reveal that the ground state geometry of M(4) cluster inside the nanotube favors 3D configuration over others. Moreover, these small clusters are found to retain their magnetic nature with a small reduction in the total magnetic moment even after encapsulation. The radial confinement effect on the atomic structure of M(4) clusters was investigated by optimizing the Co(4) (prototype example) in BNNT(10, 0), BNNT(9, 0), and BNNT(8, 0). It is found that with the increase in radial confinement (smaller diameter), the Co(4) cluster becomes more compact, which further leads to significant changes in the electronic and magnetic properties. The electronic density of states analysis of the M(4) clusters inside BNNT(10,0) showed the appearance of additional electronic states in the band gap of BNNT(10, 0). In order to underscore the possibility of functionalizing these encapsulated tubes, we have performed the adsorption of oxygen molecules on it. The adsorption of oxygen in the molecular form with elongated O-O bonds further justifies its application in the oxidative catalysis.
利用最先进的自旋极化密度泛函理论,我们研究了小磁性团簇 M(4)(M = Fe、Co 和 Ni)在惰性氮化硼纳米管[BNNT(10,0)]内的稳定性和结构方面。从各种可能的构型[一维(1D)线性链、二维(2D)平面菱形和三维(3D)四面体]开始进行了几何优化,结果表明,纳米管内 M(4)团簇的基态几何形状有利于 3D 构型而不是其他构型。此外,即使在封装后,这些小团簇仍保留其磁性,总磁矩略有减小。通过优化 BNNT(10, 0)、BNNT(9, 0)和 BNNT(8, 0)中的 Co(4)(原型示例),研究了径向限制对 M(4)团簇原子结构的影响。结果发现,随着径向限制(较小直径)的增加,Co(4)团簇变得更加紧凑,这进一步导致电子和磁性性质发生显著变化。在 BNNT(10,0)内的 M(4)团簇的电子态密度分析表明,在 BNNT(10, 0)的能带隙中出现了额外的电子态。为了强调这些封装管功能化的可能性,我们已经对其进行了氧气分子的吸附研究。分子形式的氧吸附具有伸长的 O-O 键,进一步证明了其在氧化催化中的应用。