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Enriching the hydrogen storage capacity of carbon nanotube doped with polylithiated molecules

机译:丰富多分子掺杂碳纳米管的储氢能力

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摘要

In a quest to find optimum materials for efficient storage of clean energy, we have performed first principles calculations to study the structural and energy storage properties of one-dimensional carbon nanotubes (CNTs) functionalized with polylithiated molecules (PLMs). Van der Waals corrected calculations disclosed that various PLMs like CLi, CLi2, CLi3, OLi, OLi2, OLi3, bind strongly to CNTs even at high doping concentrations ensuring a uniform distribution of dopants without forming clusters. Bader charge analysis reveals that each Li in all the PLMs attains a partial positive charge and transform into Li+ cations. This situation allows multiple H-2 molecules adsorbed with each Li+ through the polarization of incident H-2 molecules via electrostatic and van der Waals type of interaction. With a maximum doping concentration, that is 3CLi(2)/3CLi(3) and 3OLi(2)/3OLi(3) a maximum of 36 H-2 molecules could be adsorbed that corresponds to a reasonably high H-2 storage capacity with the adsorption energies in the range of -0.33 to -0.15 eV/H-2. This suits the ambient condition applications. (C) 2018 Elsevier B.V. All rights reserved.
机译:为了寻找有效存储清洁能源的最佳材料,我们进行了第一性原理计算,以研究用多分子化分子(PLM)功能化的一维碳纳米管(CNT)的结构和储能性能。 Van der Waals校正的计算显示,即使在高掺杂浓度下,各种PLM(如CLi,CLi2,CLi3,OLi,OLi2,OLi3)也能牢固地与CNT结合,从而确保了掺杂剂的均匀分布而不形成簇。 Bader电荷分析表明,所有PLM中的每个Li都会获得部分正电荷,并转变为Li +阳离子。这种情况允许多个H-2分子通过静电和范德华类型的相互作用,通过入射H-2分子的极化吸附在每个Li +上。在最大掺杂浓度为3CLi(2)/ 3CLi(3)和3OLi(2)/ 3OLi(3)的情况下,最多可吸附36个H-2分子,这对应于相当高的H-2存储容量,吸附能在-0.33至-0.15 eV / H-2的范围内。这适合环境条件的应用。 (C)2018 Elsevier B.V.保留所有权利。

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