Department of Chemistry, Faculty of Science, Benha University, P.O.Box 13518, Benha, Egypt.
J Mol Model. 2013 Mar;19(3):1211-25. doi: 10.1007/s00894-012-1615-9. Epub 2012 Nov 17.
Density functional theory calculations were performed to examine the effect of a C vacancy on the physisorption of H(2) onto Ti-functionalized C(60) fullerene when H(2) is oriented along the x-, y-, and z-axes of the fullerene. The effect of the C vacancy on the physisorption modes of H(2) was investigated as a function of H(2) binding energy within the energy window (-0.2 to -0.6 eV) targeted by the Department of Energy (DOE), and as functions of a variety of other physicochemical properties. The results indicate that the preferential orientations of H(2) in the defect-free (i.e., no C vacancy) C(60)TiH(2) complex are along the x- and y-axes of C(60) (with adsorption energies of -0.23 and -0.21 eV, respectively), making these orientations the most suitable ones for hydrogen storage, in contrast to the results obtained for defect-containing fullerenes. The defect-containing (i.e., containing a C vacancy) C(59)TiH(2) complex do not exhibit adsorption energies within the targeted energy range. Charge transfer occurs from Ti 3d to C 2p of the fullerene. The binding of H(2) is dominated by the pairwise support-metal interaction energy E(i)(Cn...Ti), and the role of the fullerene is not restricted to supporting the metal. The C vacancy enhances the adsorption energy of Ti, in contrast to that of H(2). A significant reduction in the energy gap of the pristine C(60) fullerene is observed when TiH(2) is adsorbed by it. While the C( n ) fullerene readily participates in nucleophilic processes, the adjacent TiH(2) fragment is available for electrophilic processes.
采用密度泛函理论计算研究了 C 空位对 Ti 功能化 C(60)富勒烯上 H(2)沿富勒烯 x、y 和 z 轴取向时物理吸附的影响。研究了 C 空位对 H(2)物理吸附模式的影响,其函数为 H(2)在能源部 (DOE) 目标范围内的结合能 (-0.2 至-0.6 eV),以及其他多种物理化学性质。结果表明,在无缺陷 (即无 C 空位) C(60)TiH(2) 复合物中,H(2)的优先取向是沿着 C(60)的 x 和 y 轴 (吸附能分别为-0.23 和-0.21 eV),这使得这些取向最适合储氢,与含缺陷富勒烯的结果相反。含缺陷 (即含 C 空位) C(59)TiH(2) 复合物在目标能量范围内没有表现出吸附能。电荷从 Ti 3d 转移到富勒烯的 C 2p。H(2)的结合主要由成对支持金属相互作用能 E(i)(Cn...Ti)主导,富勒烯的作用不仅限于支持金属。与 H(2)相比,C 空位增强了 Ti 的吸附能。当 TiH(2)被吸附时,原始 C(60)富勒烯的能隙显著减小。虽然 C(n)富勒烯很容易参与亲核过程,但相邻的 TiH(2)片段可用于亲电过程。