Simulation of the carbon dioxide hydrate-water interfacial energy
Jes\'us Algabaa Esteban Acu\~na, Jos\'e Manuel M\'iguez, Bruno Mendiboure, Iv\'an M. Zer\'on, Felipe J. Blas

TL;DR
This study uses advanced molecular simulations to accurately estimate the interfacial free energy of carbon dioxide hydrates at coexistence conditions, addressing uncertainties in experimental measurements.
Contribution
It introduces a novel computational approach combining molecular models and the Mold Integration methodology to estimate hydrate-water interfacial energy.
Findings
Simulation results align with experimental data.
Reliable predictions of hydrate-water interfacial energy.
Demonstrates the feasibility of molecular simulations for hydrate energetics.
Abstract
Carbon dioxide hydrates are ice-like nonstoichiometric inclusion solid compounds with importance to global climate change, and gas transportation and storage. The thermodynamic and kinetic mechanisms that control carbon dioxide nucleation critically depend on hydrate-water interfacial free energy. Interfacial energies show large uncertainties due to the conditions at which experiments are performed. Under these circumstances, we hypothesize that accurate molecular models for water and carbon dioxide combined with computer simulation tools can offer an alternative but complementary way to estimate interfacial energies at coexistence conditions from a molecular perspective. We have evaluated the interfacial free energy of carbon dioxide hydrates at coexistence conditions (three-phase equilibrium or dissociation line) implementing advanced computational methodologies, including the novel…
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Taxonomy
TopicsMethane Hydrates and Related Phenomena · CO2 Sequestration and Geologic Interactions · nanoparticles nucleation surface interactions
