Molecular Dynamics of CH4/N2 Mixtures on a Flexible Graphene Layer: Adsorption and Selectivity Case Study
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Marzio Rosi | Andrea Lombardi | Noelia Faginas-Lago | A. Lombardi | M. Rosi | Alfredo Sánchez de Merás | A. Sánchez de Merás | J. Vekeman | I. García Cuesta | N. Faginas-Lago | Inmaculada García Cuesta | Jelle Vekeman | Jelle Vekeman | A. S. D. Sánchez de Merás
[1] Alfredo Sánchez de Merás,et al. Modelization of the $$\hbox {H}_{2}$$H2 adsorption on graphene and molecular dynamics simulation , 2017 .
[2] M. Albertí,et al. Ion size influence on the Ar solvation shells of M(+)-C6F6 clusters (M = Na, K, Rb, Cs). , 2012, The journal of physical chemistry. A.
[3] Z. G. Fthenakis,et al. Atomistic potential for graphene and other sp2 carbon systems. , 2017, Physical chemistry chemical physics : PCCP.
[4] T. Vlugt,et al. UvA-DARE ( Digital Academic Repository ) Polarizable Force Fields for CO 2 and CH 4 Adsorption in M-MOF-74 , 2017 .
[5] R. Cracknell,et al. Adsorption and selectivity of carbon dioxide with methane and nitrogen in slit-shaped carbonaceous micropores: Simulation and experiment , 1996 .
[6] V. Berry,et al. Wrinkled, rippled and crumpled graphene: an overview of formation mechanism, electronic properties, and applications , 2016 .
[7] R. L. Robinson,et al. Adsorption of Methane, Nitrogen, Carbon Dioxide, and Their Binary Mixtures on Dry Activated Carbon at 318.2 K and Pressures up to 13.6 MPa , 2003 .
[8] F. Rodriguez-Reinoso,et al. Co-adsorption of N2 in the presence of CH4 within carbon nanospaces: evidence from molecular simulations , 2013, Nanotechnology.
[9] A. Becke. Density-functional thermochemistry. , 1996 .
[10] P. M. Rodger,et al. DL_POLY: Application to molecular simulation , 2002 .
[11] Ruisheng Xue,et al. Adsorption of CO2, CH4, CO2/N2 and CO2/CH4 in novel activated carbon beads: Preparation, measurements and simulation , 2011 .
[12] Xiangdong Ding,et al. Separation selectivity and structural flexibility of graphene-like 2-dimensional membranes. , 2018, Physical chemistry chemical physics : PCCP.
[13] J. Pople,et al. Self—Consistent Molecular Orbital Methods. XII. Further Extensions of Gaussian—Type Basis Sets for Use in Molecular Orbital Studies of Organic Molecules , 1972 .
[14] N. Koratkar,et al. A carbon science perspective in 2018: Current achievements and future challenges , 2018, Carbon.
[15] E. A. Müller,et al. Effect of Pore Morphology on the Adsorption of Methane/Hydrogen Mixtures on Carbon Micropores , 2012 .
[16] Noelia Faginas Lago,et al. Nitrogen Gas on Graphene: Pairwise Interaction Potentials , 2018, ICCSA.
[17] B. Raghavan,et al. H2/CH4 Gas Separation by Variation in Pore Geometry of Nanoporous Graphene , 2017 .
[18] Chongli Zhong,et al. Exploration of nanoporous graphene membranes for the separation of N2 from CO2: a multi-scale computational study. , 2016, Physical chemistry chemical physics : PCCP.
[19] M. Albertí,et al. Competitive role of CH4-CH4 and CH-π interactions in C6H6-(CH4)n aggregates: the transition from dimer to cluster features. , 2012, The journal of physical chemistry. A.
[20] F. L. Hirshfeld. Bonded-atom fragments for describing molecular charge densities , 1977 .
[21] Fernando Pirani,et al. Nanostructure Selectivity for Molecular Adsorption and Separation: the Case of Graphyne Layers , 2018, The Journal of Physical Chemistry C.
[22] F. Dreisbach,et al. High Pressure Adsorption Data of Methane, Nitrogen, Carbon Dioxide and their Binary and Ternary Mixtures on Activated Carbon , 1999 .
[23] Gaia Grossi,et al. Accurate analytic intermolecular potential for the simulation of Na+ and K+ ion hydration in liquid water , 2015 .
[24] Jing Zhang,et al. Separation of Hydrogen and Nitrogen Gases with Porous Graphene Membrane , 2011 .
[25] M. Albertí,et al. On the suitability of the ILJ function to match different formulations of the electrostatic potential for water-water interactions , 2009 .
[26] Alírio E. Rodrigues,et al. Adsorption Equilibrium of Methane, Carbon Dioxide, and Nitrogen on Zeolite 13X at High Pressures , 2004 .
[27] Petros Koumoutsakos,et al. Carbon nanotubes in water:structural characteristics and energetics , 2001 .
[28] J. Sánchez-Marín,et al. Modeling the Interaction of Carbon Monoxide with Flexible Graphene: From Coupled Cluster Calculations to Molecular-Dynamics Simulations. , 2018, Chemphyschem : a European journal of chemical physics and physical chemistry.
[29] Soojin Park,et al. A review: methane capture by nanoporous carbon materials for automobiles , 2016 .
[30] Noelia Faginas Lago,et al. Competitive solvation of K+ by C6H6 and H2O in the K+-(C6H6)n-(H2O)m (n = 1–4; m = 1–6) aggregates , 2013 .
[31] D. Azevedo,et al. The effect of heterogeneity in the randomly etched graphite model for carbon pore size characterization , 2010 .
[32] A. Rodrigues,et al. Adsorption of Pure and Binary CO2, CH4, and N2 Gas Components on Activated Carbon Beads , 2015 .
[33] Khaled A. M. Gasem,et al. Adsorption of methane, nitrogen, carbon dioxide and their mixtures on wet Tiffany coal , 2005 .
[34] Tomoko Hasegawa,et al. Scenarios towards limiting global mean temperature increase below 1.5 °C , 2018, Nature Climate Change.
[35] Fernando Pirani,et al. Beyond the Lennard-Jones model: a simple and accurate potential function probed by high resolution scattering data useful for molecular dynamics simulations. , 2008, Physical chemistry chemical physics : PCCP.
[36] F. Huarte-Larrañaga,et al. A molecular dynamics simulation of methane adsorption in single walled carbon nanotube bundles , 2011 .
[37] J. Sánchez-Marín,et al. Flexibility in the Graphene Sheet: The Influence on Gas Adsorption from Molecular Dynamics Studies , 2019, The Journal of Physical Chemistry C.
[38] J. Sánchez-Marín,et al. Potential models for the simulation of methane adsorption on graphene: development and CCSD(T) benchmarks. , 2018, Physical chemistry chemical physics : PCCP.
[39] José Alberto Fuinhas,et al. Have fossil fuels been substituted by renewables? An empirical assessment for 10 European countries , 2018 .
[40] Noelia Faginas Lago,et al. A high‐level ab initio study of the N2 + N2 reaction channel , 2013, J. Comput. Chem..
[41] G. Kalosakas,et al. In-plane force fields and elastic properties of graphene , 2012, 1211.5095.
[42] D. Tittensor,et al. Present and future biodiversity risks from fossil fuel exploitation , 2018 .
[43] Y Wang,et al. Adsorption of Hydrogen Molecules on Carbon Nanotubes Using Quantum Chemistry and Molecular Dynamics. , 2016, The journal of physical chemistry. A.
[44] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[45] T. Verstraelen,et al. Methane Adsorption in Zr-Based MOFs: Comparison and Critical Evaluation of Force Fields , 2017, The journal of physical chemistry. C, Nanomaterials and interfaces.
[46] Matthias Witte,et al. Methane adsorption on graphene from first principles including dispersion interaction , 2011 .
[47] Sridhar Komarneni,et al. Porous Adsorbents for Vehicular Natural Gas Storage: A Review , 1998 .
[48] Antonio Laganà,et al. Water (H2O) m or Benzene (C6H6) n Aggregates to Solvate the K + ? , 2013, ICCSA.
[49] D. Do,et al. Effects of potential models in the vapor–liquid equilibria and adsorption of simple gases on graphitized thermal carbon black , 2005 .
[50] Fernando Pirani,et al. Atom–bond pairwise additive representation for intermolecular potential energy surfaces , 2004 .