Wang Qian, Jena Puru
†Center for Applied Physics and Technology, College of Engineering, Peking University, Beijing 100871, China.
‡Physics Department, Virginia Commonwealth University, Richmond, Virginia 23284, United States.
J Phys Chem Lett. 2012 May 3;3(9):1084-8. doi: 10.1021/jz3002037. Epub 2012 Apr 12.
Hydrogen storage properties of Li-coated C60 fullerene have been studied using density functional theory within the local density as well as generalized gradient approximation. Hydrogen atoms are found to bind to Li6C60 in two distinct forms, with the first set attaching to C atoms, not linked to Li, in atomic form. Once all such C atoms are saturated with hydrogen, the second set of hydrogen atoms bind quasi-molecularly to the Li atoms, five of which remain in the exohedral and the sixth in the endohedral position. The corresponding hydrogen gravimetric density in Li6C60H40 is 5 wt %. Desorption of hydrogen takes place in succession, the ones bound quasi-molecularly desorbing at a temperature lower than the ones bound atomically. The results are compared with the recent experiment on hydrogen adsorption in Li6C60.
利用局域密度近似和广义梯度近似下的密度泛函理论研究了锂包覆C60富勒烯的储氢性能。发现氢原子以两种不同形式与Li6C60结合,第一组以原子形式附着在未与锂相连的碳原子上。一旦所有这些碳原子都被氢饱和,第二组氢原子以准分子形式与锂原子结合,其中五个位于外表面,第六个位于内表面。Li6C60H40中相应的氢重量密度为5 wt%。氢的解吸依次发生,以准分子形式结合的氢在低于以原子形式结合的氢的温度下解吸。将结果与最近关于Li6C60中氢吸附的实验进行了比较。