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February 24, 20260 citationsOpen Access

Homogeneous nucleation rate of carbon dioxide hydrate formation under experimental condition from Seeding simulations

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IZIván M. ZerónJAJesús AlgabaJMJosé Manuel Míguez

Key Points

  • This research aims to explore the nucleation of carbon dioxide hydrates from aqueous solutions using molecular dynamics simulations.
  • Conducted molecular dynamics simulations using TIP4P/Ice and TraPPE models for water and CO2 respectively.
  • Examined different temperatures and CO2 concentrations at a pressure of 400 bar.
  • Applied brute force molecular dynamics and seeding methods to study nucleation under varying conditions.
  • Identified critical clusters using a linear combination of q3 and q12 order parameters.
  • Determined a nucleation rate of 10^25 m^−3 s^−1 at 255 K with 35 K of supercooling.
  • Found that CO2 hydrate nucleation is faster than methane hydrate nucleation due to lower interfacial free energy.
  • Predicted nucleation rate temperature dependence for CO2-saturated solutions, expanding challenges for experimental comparisons.
  • Concluded that homogeneous nucleation is unlikely below 20 K supercooling.

Abstract

We investigate the nucleation of carbon dioxide (CO2) hydrates from carbon dioxide aqueous solutions by means of molecular dynamics simulations using the TIP4P/Ice and the TraPPE models for water and CO2, respectively. We work at 400 bar and different temperatures and CO2 concentrations. We use brute force molecular dynamics when the supersaturation or the supercooling is so high so that nucleation occurs spontaneously and Seeding otherwise. We use both methods for a particular state and found an excellent agreement when using a linear combination of q3 and q12 order parameters to identify critical clusters. With such order parameter, we get a rate of 10²5 m^−3 s^−1 for nucleation in a CO2 saturated solution at 255 K (35 K of supercooling). By comparison with our previous work on methane hydrates, we conclude that nucleation of CO2 hydrates is several orders of magnitude faster due to a lower interfacial free energy between the crystal and the solution. By combining our nucleation studies with a recent calculation of the hydrate–solution interfacial free energy at coexistence Algaba et al. , J. Colloid Interface Sci. 623, 354–367 (2022), we obtain a prediction of the nucleation rate temperature dependence for CO2-saturated solutions (the experimentally relevant concentration). On the one hand, we open the window for comparison with experiments for supercooling larger than 25 K. On the other hand, we conclude that homogeneous nucleation is impossible for supercooling lower than 20 K. Therefore, nucleation must be heterogeneous in typical experiments where hydrate formation is observed at low supercooling. To assess the hypothesis that nucleation occurs at the solution-CO2 interface, we run spontaneous nucleation simulations in two-phase systems and find, by comparison with single-phase simulations, that the interface does not affect hydrate nucleation, at least at the deep supercooling at which this study was carried out (40 and 45 K). Overall, our work sheds light on molecular and thermodynamic aspects of hydrate nucleation.

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Cite This Study

Zerón et al. (2025) studied this question.

synapsesocial.com/papers/699d4008de8e28729cf650ebhttps://doi.org/10.5281/zenodo.18730790
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