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Adsorption of Hydrogen Molecules on Carbon Nanotubes Using Quantum Chemistry and Molecular Dynamics

Noelia Faginas‐LagoDipartimento di di Chimica, Biologia e Biotecnologie, Università degli Studi di Perugia, Via Elce di Sotto 8, 06123 Perugia, ItalyD. YeniDipartimento di di Chimica, Biologia e Biotecnologie, Università degli Studi di Perugia, Via Elce di Sotto 8, 06123 Perugia, ItalyF. HuarteChemical Physics Department and Institute for Theoretical and Computational Chemistry (IQTUB), Universitat de Barcelona, Martí i Franqués 1, 08028 Barcelona, SpainYang WangDepartamento de Química, Módulo 13, Universidad Autónoma de Madrid, 28049 Madrid, SpainManuel Alcamı́Departamento de Química, Módulo 13, Universidad Autónoma de Madrid, 28049 Madrid, SpainFernando Martı́nCondensed Matter Physics Center (IFIMAC), Universidad Autónoma de Madrid, 28049 Madrid, Spain
2016en
ABI

Аннотация

Physisorption and storage of molecular hydrogen on single-walled carbon nanotube (SWCNT) of various diameters and chiralities are studied by means of classical molecular dynamics (MD) simulations and a force field validated using DFT-D2 and CCSD(T) calculations. A nonrigid carbon nanotube model is implemented with stretching (C-C) and valence angle potentials (C-C-C) formulated as Morse and Harmonic cosine potentials, respectively. Our results evidence that the standard Lennard-Jones potential fails to describe the H2-H2 binding energies. Therefore, our simulations make use of a potential that contains two-body term with parameters obtained from fitting CCSD(T)/CBS binding energies. From our MD simulations, we have analyzed the interaction energies, radial distribution functions, gravimetric densities (% wt), and the distances of the adsorbed H2 layers to the three zigzag type of nanotubes (5,0), (10,0), and (15,0) at 100 and 300 K.

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