Pore wall thickness and interpore influence on adsorption of alkanes in carbons using explicit pore models
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Bhatia, S.K.: Density functional theory analysis of the influence of pore wall heterogeneity on adsorption in carbons. Langmuir 18, 6845–6856 (2002)
Biggs, M.J., Buts, A.: Virtual porous carbons: what they are and what they can be used for. Mol. Simul. 32, 579–593 (2000)
Birkett, G.R., Do, D.D.: On the physical adsorption of gases on carbon materials from molecular simulation. Adsorption 13, 407–424 (2007)
Cai, Q., Buts, A., Biggs, M.J., Seaton, N.A.: Evaluation of methods for determining the pore size distribution and pore-network connectivity of porous carbons. Langmuir 23, 8430–8440 (2007)
Chen, X.S., McEnaney, B., Mays, T.J., Alcanis-Monge, J., Cazorla-Amoros, D., Linares-Solano, A.: Theoretical and experimental studies of methane adsorption on microporous carbons. Carbon 35, 1251–1258 (1997)
Davies, G.M., Seaton, N.A.: The effect of the choice of pore model on the characterization of the internal structure of microporous carbons using pore size distribution. Carbon 36, 1473–1490 (1998)
Do, D.D., Do, H.D.: Modeling of adsorption on nongraphitized carbon surface: GCMC simulation studies and comparison with experimental data. J. Phys. Chem. B 110, 17531–17538 (2006)
Frenkel, D., Smit, B.: Understanding Molecular Simulation. Academic Press, New York (2002)
Gusev, V.Y., O’Brien, J.A., Seaton, N.A.: A self-consistent method for characterization of activated carbons using supercritical adsorption and grand canonical Monte Carlo simulations. Langmuir 13, 2815–2821 (1997)
Lucena, S.M.P., Paiva, C.A.S., Silvino, P.F.G., Azevedo, D.C.S., Cavalcante, C.L., Jr.: The effect of heterogeneity in the randomly etched graphite model for carbon pore size characterization. Carbon 48, 2554–2565 (2010a)
Lucena, S.M.P., Frutuoso, L.F.A., Silvino, P.F.G., Azevedo, D.C.S., Toso, J.P., Zgrablich, G., Cavalcante, C.L., Jr.: Molecular simulation of collection of methane isotherms in carbon material using all-atom and united atom models. Colloids Surf. A 357, 53–60 (2010b)
Maginn, E.J.: From discovery to data: what must happen for molecular simulation to become a mainstream chemical engineering tool. AIChE J. 55, 1304–1310 (2009)
Mayo, S.L., Olafson, B.D., Goddard, W.A. III: DREIDING—a generic force-field for molecular simulations. J. Phys. Chem. 94, 8897–8909 (1990)
Mays, T.J.: Simulation of adsorption and the design of activated carbon. In: LeVan, M.D. (ed.) Proceedings of the Fifth International Conference on Fundamentals of Adsorption, Pacific Grove, California, USA., pp. 603–610 (1996)
Nguyen, T.X., Bhatia, S.K.: Characterization of pore wall heterogeneity in nanoporous carbons using adsorption: the slit pore model revisited. J. Phys. Chem. B 108, 14032–14042 (2004)
Patrykiejew, A., Reszko-Zygmunt, J., Rzysko, W., Sokolowski, S.: Effects of pore–pore correlations on capillary condensation in an ensemble of slit-like pores: application of a density functional theory. J. Colloid Interface Sci. 228, 135–140 (2000)
Ravikovitch, P.I., Vishnyakov, A., Russo, R., Neimark, A.V.: Unified approach to pore size characterization of microporous carbonaceous materials from N2, Ar, and CO2 adsorption isotherms. Langmuir 16, 2311–2320 (2000)
Sharma, A., Kyotani, T., Tomita, A.: A new quantitative approach for microstructural analysis of coal char using HRTEM images. Fuel 78, 1203–1212 (1999)
Sharma, A., Kyotani, T., Tomita, A.: Comparison of structural parameters of PF carbon from XRD and HRTEM techniques. Carbon 38, 1977–1984 (2000)
Sorption, invoked from materials studio v. 4.1. Accelrys Inc, San Diego (2007)
Steele, W.A.: The Interaction of Gases with Solid Surfaces. Pergamon, New York (1974)
Sweatman, M.B., Quirke, N.: Characterization of porous materials by gas adsorption at ambient temperatures and high pressure. J. Phys. Chem. B 105, 1403–1411 (2001)
Thomson, K.T., Gubbins, K.E.: Modeling structural morphology of microporous carbons by reverse Monte Carlo. Langmuir 16, 5761–5773 (2000)
Vishnyakov, A., Ravikovitch, P.I., Neimark, A.V.: Molecular level models for CO2 sorption in nanopores. Langmuir 15, 8736–8742 (1999)