Ab initio computational investigation of physisorption of molecular hydrogen on achiral single-walled carbon nanotubes -: art. no. 214724

被引:26
作者
Ferre-Vilaplana, A
机构
[1] Inst Informat Technol, Ciudad Politecn Innovac, High Performance Comp & Visualuzat Aided Sci & En, Valencia 46022, Spain
[2] Univ Politecn Valencia, Escuela Politecn Super Alcoy, Dept Sistemas Informat & Computac, Alicante 03801, Spain
关键词
D O I
10.1063/1.1924545
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Using relatively approximated methods, physisorption of molecular hydrogen on single-walled carbon nanotubes (SWCNTs) as a mechanism to develop hydrogen storage systems has been only partially investigated in literature. Here, we use ab initio molecular-orbital theory, at benchmark quality level, to provide a more complete description about the mentioned mechanism. Physisorption inside and outside achiral-armchair and zigzag-SWCNTs, in the range of diameters from about 6 angstrom-chiral vectors (5,5) and (8,0)-to more than 30 angstrom-chiral vectors (30,30) and (40,0)-was examined. Perpendicular, longitudinal, and transversal configurations, with the hydrogen molecule centered on an aromatic ring, were taken into account. SWCNTs were modeled as curved coronenelike (C24H12) graphene sheets. Local modeling strategies, using more complete basis sets for the adsorbate and for the nearest atoms to the adsorbate than for the lion's share of the substrate, at the Moller-Plesset second-order correlation level, were selected for numerical treatment. Basis-set superposition errors were corrected by means of the counterpoise method of Bois and Bernardi. It was found that physisorption of molecular hydrogen on SWCNTs would depend mainly on the diameter being virtually independent of the chirality. Lowest physisorption energies, up to 20% less than that on planar graphene, would be reached outside nanotubes in the range of diameters of 6-10 angstrom. For hydrogen storage purposes, highest physisorption energies, up to 40% greater than that on planar graphene, but not more, would be reached inside nanotubes in the relatively narrow range of diameters of 10-20 angstrom. Finally, for diameters from 20 angstrom onwards physisorption of molecular hydrogen on SWCNTs would be in the range of +/- 10% of that on planar graphene. To our knowledge, this would be the most complete and realistic theoretical investigation of the target physisorption mechanism to date. (c) 2005 American Institute of Physics.
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页数:7
相关论文
共 22 条
[1]   Hydrogen adsorption studies on single wall carbon nanotubes [J].
Ansón, A ;
Callejas, MA ;
Benito, AM ;
Maser, WK ;
Izquierdo, MT ;
Rubio, B ;
Jagiello, J ;
Thommes, M ;
Parra, JB ;
Martínez, MT .
CARBON, 2004, 42 (07) :1243-1248
[2]   Density functional study of adsorption of molecular hydrogen on graphene layers [J].
Arellano, JS ;
Molina, LM ;
Rubio, A ;
Alonso, JA .
JOURNAL OF CHEMICAL PHYSICS, 2000, 112 (18) :8114-8119
[3]   Interaction of molecular and atomic hydrogen with (5,5) and (6,6) single-wall carbon nanotubes [J].
Arellano, JS ;
Molina, LM ;
Rubio, A ;
López, MJ ;
Alonso, JA .
JOURNAL OF CHEMICAL PHYSICS, 2002, 117 (05) :2281-2288
[4]   Hydrogen storage in graphite nanofibers [J].
Chambers, A ;
Park, C ;
Baker, RTK ;
Rodriguez, NM .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (22) :4253-4256
[5]   Review of hydrogen storage by adsorption in carbon nanotubes [J].
Darkrim Lamari, F ;
Malbrunot, P ;
Tartaglia, GP .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2002, 27 (02) :193-202
[6]   Storage of hydrogen in single-walled carbon nanotubes [J].
Dillon, AC ;
Jones, KM ;
Bekkedahl, TA ;
Kiang, CH ;
Bethune, DS ;
Heben, MJ .
NATURE, 1997, 386 (6623) :377-379
[7]   Molecular modeling study of hydrogen storage in carbon nanotubes [J].
Dodziuk, H ;
Dolgonos, G .
CHEMICAL PHYSICS LETTERS, 2002, 356 (1-2) :79-83
[8]  
FERREVILAPLANA A, 2005, J CHEM PHYS, V122
[9]  
*HIGH PERF COMP CH, 2004, NWCHEM COMP CHEM PAC
[10]   Non-empirical molecular orbital calculations on the protonation of carbon monoxide [J].
Jansen, H. B. ;
Ros, P. .
CHEMICAL PHYSICS LETTERS, 1969, 3 (03) :140-143