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Encapsulation of small magnetic clusters in fullerene cages: A density functional theory investigation within van der Waals corrections

机译:富勒烯笼中的小型磁性团簇的封装:范德华校正中的密度泛函理论研究

摘要

The encapsulation of magnetic transition-metal (TM) clusters inside carbon cages (fullerenes, nanotubes) has been of great interest due to the wide range of applications, which spread from medical sensors in magnetic resonance imaging to photonic crystals. Several theoretical studies have been reported; however, our atomistic understanding of the physical properties of encapsulated magnetic TM 3d clusters is far from satisfactory. In this work, we will report general trends, derived from density functional theory within the generalized gradient approximation proposed by Perdew, Burke, and Ernzerhof (PBE), for the encapsulation properties of the TMm@C-n (TM = Fe, Co, Ni; m = 2-6, n = 60,70,80,90) systems. Furthermore, to understand the role of the van der Waals corrections to the physical properties, we employed the empirical Grimme's correction (PBE + D2). We found that both PBE and PBE + D2 functionals yield almost the same geometric parameters, magnetic and electronic properties, however, PBE + D2 strongly enhances the encapsulation energy. We found that the center of mass of the TMm clusters is displaced towards the inside C-n surfaces, except for large TMm clusters (m = 5 and 6). For few cases, e. g., Co-4 and Fe-4, the encapsulation changes the putative lowest-energy structure compared to the isolated TMm clusters. We identified few physical parameters that play an important role in the sign and magnitude of the encapsulation energy, namely, cluster size, fullerene equatorial diameter, shape, curvature of the inside C-n surface, number of TM atoms that bind directly to the inside C-n surface, and the van der Waals correction. The total magnetic moment of encapsulated TMm clusters decreases compared with the isolated TMm clusters, which is expected due to the hybridization of the d-p states, and strongly depends on the size and shape of the fullerene cages.
机译:碳笼罩(富勒烯,纳米管)内部的磁性过渡金属(TM)簇的封装由于其广泛的应用而引起了人们的极大兴趣,其应用范围从磁共振成像中的医学传感器到光子晶体。已经报道了一些理论研究。但是,我们对封装的磁性TM 3d团簇的物理性质的原子学认识远远不能令人满意。在这项工作中,我们将报告在Perdew,Burke和Ernzerhof(PBE)提出的广义梯度近似中,由密度泛函理论得出的关于TMm @ Cn(TM = Fe,Co,Ni; m = 2-6,n = 60,70,80,90)系统。此外,为了了解范德华校正对物理性质的作用,我们采用了经验Grimme校正(P​​BE + D2)。我们发现PBE和PBE + D2的功能均产生几乎相同的几何参数,磁性和电子性质,但是PBE + D2极大地增强了封装能量。我们发现,TMm团簇的质心朝着C-n内表面移动,除了大型TMm团簇(m = 5和6)。在少数情况下,e。例如Co-4和Fe-4,与孤立的TMm簇相比,封装改变了假定的最低能量结构。我们确定了几个物理参数,它们在包封能量的符号和大小中起着重要作用,即簇大小,富勒烯赤道直径,形状,内部Cn表面的曲率,直接结合到内部Cn表面的TM原子数,并进行范德华校正。与隔离的TMm簇相比,封装的TMm簇的总磁矩减小,这是由于d-p态的杂合所预期的,并且在很大程度上取决于富勒烯笼的大小和形状。

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