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Li12C60储氢的第一性原理研究。

First-principles study of hydrogen storage on Li12C60.

作者信息

Sun Qiang, Jena Puru, Wang Qian, Marquez Manuel

机构信息

INEST Group, Research Center, Philip Morris USA, Richmond, Virginia 23234, USA.

出版信息

J Am Chem Soc. 2006 Aug 2;128(30):9741-5. doi: 10.1021/ja058330c.

Abstract

Solid state materials capable of storing hydrogen with high gravimetric (9 wt %) and volumetric density (70 g/L) are critical for the success of a new hydrogen economy. In addition, an ideal storage system should be able to operate under ambient thermodynamic conditions and exhibit fast hydrogen sorption kinetics. No materials are known that meet all these requirements. While recent theoretical efforts showed some promise for transition-metal-coated carbon fullerenes, later studies demonstrated that these metal atoms prefer to cluster on the fullerene surface, thus reducing greatly the weight percentage of stored hydrogen. Using density functional theory we show that Li-coated fullerenes do not suffer from this constraint. In particular, we find that an isolated Li(12)C(60) cluster where Li atoms are capped onto the pentagonal faces of the fullerene not only is very stable but also can store up to 120 hydrogen atoms in molecular form with a binding energy of 0.075 eV/H(2). In addition, the structural integrity of Li(12)C(60) clusters is maintained when they are allowed to interact with each other. The lowest energy structure of the dimer is one where the Li atom capped on the five-member ring of one fullerene binds to the six-member ring of the other. The binding of hydrogen to the linking Li atom and the potential of materials composed of Li(12)C(60) building blocks for hydrogen storage are discussed.

摘要

能够以高重量密度(9 wt%)和体积密度(70 g/L)存储氢气的固态材料对于新氢经济的成功至关重要。此外,理想的存储系统应能够在环境热力学条件下运行,并展现出快速的氢吸附动力学。目前还没有已知的材料能满足所有这些要求。虽然最近的理论研究表明过渡金属包覆的碳富勒烯有一些前景,但后来的研究表明这些金属原子倾向于在富勒烯表面聚集,从而大大降低了存储氢的重量百分比。利用密度泛函理论,我们表明锂包覆的富勒烯不存在这种限制。特别是,我们发现一个孤立的Li(12)C(60)团簇,其中锂原子覆盖在富勒烯的五边形面上,不仅非常稳定,而且能以分子形式存储多达120个氢原子,结合能为0.075 eV/H(2)。此外,当Li(12)C(60)团簇相互作用时,其结构完整性得以保持。二聚体的最低能量结构是一个富勒烯五员环上覆盖的锂原子与另一个富勒烯的六员环结合的结构。本文讨论了氢与连接锂原子的结合以及由Li(12)C(60)结构单元组成的材料的储氢潜力。

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