Wang Qian, Sun Qiang, Jena Puru, Kawazoe Yoshiyuki
School of Physical Science and Technology, Southwest University, Chongqing 400715, China, Department of Physics, Virginia Commonwealth University, Richmond, Virginia 23284, Department of Advanced Materials and Nanotechnology and Center for Applied Physics and Technology, Peking University, Beijing 100871, China, and Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan.
J Chem Theory Comput. 2009 Feb 10;5(2):374-9. doi: 10.1021/ct800373g. Epub 2009 Jan 5.
First principles calculations based on gradient corrected density functional theory and molecular dynamics simulations of Ca decorated fullerene yield some novel results: (1) C60 fullerene decorated with 32 Ca atoms on each of its 20 hexagonal and 12 pentagonal faces is extremely stable. Unlike transition metal atoms that tend to cluster on a fullerene surface, Ca atoms remain isolated even at high temperatures. (2) C60Ca32 can absorb up to 62 H2 molecules in two layers. The first 30 H2 molecules dissociate and bind atomically on the 60 triangular faces of the fullerene with an average binding energy of 0.45 eV/H, while the remaining 32 H2 molecules bind on the second layer quasi-molecularly with an average binding energy of 0.11 eV/H2. These binding energies are ideal for Ca coated C60 to operate as a hydrogen storage material at near ambient temperatures with fast kinetics. (3) The gravimetric density of this hydrogen storage material can reach 6.2 wt %. Simple model calculations show that this density is the limiting value for higher fullerenes.
(1)在其20个六边形面和12个五边形面上每个面均装饰有32个钙原子的C60富勒烯极其稳定。与倾向于在富勒烯表面聚集的过渡金属原子不同,钙原子即使在高温下仍保持孤立状态。(2)C60Ca32可以在两层中吸收多达62个H2分子。前30个H2分子解离并以平均结合能0.45 eV/H原子地结合在富勒烯的60个三角形面上,而其余32个H2分子以平均结合能0.11 eV/H2准分子地结合在第二层上。这些结合能非常适合钙包覆的C60在接近环境温度下以快速动力学用作储氢材料。(3)这种储氢材料的重量密度可以达到6.2 wt%。简单的模型计算表明,该密度是更高富勒烯的极限值。