Cite this article:
Niall J. English. Molecular-dynamics simulation of methane-hydrate crystallisation in terahertz electromagnetic fields: Assessment of field intensitiesJ. Chin. Phys. B, 2026, 35(5): 050501.
| Niall J. English. Molecular-dynamics simulation of methane-hydrate crystallisation in terahertz electromagnetic fields: Assessment of field intensitiesJ. Chin. Phys. B, 2026, 35(5): 050501. |
Molecular-dynamics simulation of methane-hydrate crystallisation in terahertz electromagnetic fields: Assessment of field intensities
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Abstract
Non-equilibrium molecular dynamics simulations were conducted to study the growth and dissolution of a spherical methane hydrate crystallite, using a polarizable water potential, encircled by a liquid phase of saturated water and methane, both in the microwave to far-infrared range and under applied external electromagnetic (e/m) fields (5 GHz to 7.5 THz) at r.m.s. electric-field strengths of up to the order of 1 V·nm−1 — in an attempt to assess and model the “threshold” field intensities required to initiate hydrate dissolution. The average growth rate of the crystallite in the absence of a field was found to be approximately 0.32 water and 0.045 methane molecules per picosecond. Upon applying e/m fields, deviations from zero-field crystal growth patterns were observed for r.m.s. field strengths, especially at ∼ 1 V·nm−1 as a rough ‘threshold’. When the water dipole was aligned with the external field, systematic frequency variations were observed, providing a mechanistic rationale for field-coupling effects on dipole direction/magnitude and hydrogen-bonding shifts. -
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