Jimenez-Izal Elisa, Azpiroz Jon M, Gupta Riti, Matxain Jon M, Ugalde Jesus M
Kimika Fakultatea, Euskal Herriko Unibertsitatea (UPV/EHU) and Donostia International Physics Center (DIPC), P.K. 1072, 20080, Donostia, Euskadi, Spain,
J Mol Model. 2014 Jun;20(6):2227. doi: 10.1007/s00894-014-2227-3. Epub 2014 Jun 8.
ZnS and CdS small nanoclusters have been predicted to trap alkali metals and halogen atoms. However would this kind of nanocompounds be able to encapsulate dianions and dications? This would be very interesting from an experimental point of view, since it would allow the isolation of such divalent ions. Moreover, the resulting endohedral complexes would serve as building blocks for new cluster-assembled materials, with enhanced stability arising from the electrostatic interaction between the incarcerated ions. In this work we have studied the structure and stability of (X@(CdS)i)(±2) with X = Be, Mg, Ca, O, S, Se and i = 9, 12, 15, 16 on the basis of Density Functional Theory and Quantum Molecular Dynamics simulations. Most of the nanoclusters are found to trap both chalcogen and alkaline earth atoms. Furthermore, the chalcogen doped clusters are calculated to be both thermodynamically and thermally stable. However, only a few of alkaline earth metal doped structures are predicted to be thermally stable. Therefore, the charge of the dopant atom appears to be crucial in the endohedral doping. Additionally, the absorption spectra of the title compounds have been simulated by means of Time Dependent Density Functional Theory (TDDFT) calculations. The calculated optical features show a blueshift with respect to the bulk CdS wurtzite. Furthermore, doping modifies notably the optical spectra of nanoclusters, as the absorption spectra shift to lower energies upon encapsulation.
据预测,硫化锌和硫化镉小纳米团簇能够捕获碱金属和卤素原子。然而,这类纳米化合物能否封装二价阴离子和二价阳离子呢?从实验的角度来看,这将非常有趣,因为它能实现此类二价离子的分离。此外,生成的内包络合物将作为新型团簇组装材料的构建单元,被囚禁离子之间的静电相互作用会增强其稳定性。在这项工作中,我们基于密度泛函理论和量子分子动力学模拟,研究了X = Be、Mg、Ca、O、S、Se且i = 9、12、15、16时(X@(CdS)i)(±2)的结构和稳定性。发现大多数纳米团簇既能捕获硫族元素原子,也能捕获碱土金属原子。此外,计算得出硫族元素掺杂的团簇在热力学和热稳定性方面都很好。然而,预计只有少数碱土金属掺杂结构具有热稳定性。因此,掺杂原子的电荷在内包掺杂中似乎至关重要。此外,通过含时密度泛函理论(TDDFT)计算模拟了标题化合物的吸收光谱。计算得到的光学特征显示相对于块状纤锌矿CdS有蓝移。此外,掺杂显著改变了纳米团簇的光谱,因为封装后吸收光谱向更低能量处移动。