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THz Pump Pulse-Driven Temporal Response of Liquid Water Probed by Machine-Learning-Accelerated Non-Equilibrium
Kit Joll1, Philipp Schienbein2,3
1Department of Physics and Astronomy and Thomas Young Centre, University College London, London WC1E 6BT, United Kingdom.
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Ultrafast, time-resolved spectroscopies enable the direct observation of molecular dynamics in condensed-phase systems and have revealed key insights into energy transport, hydrogen-bond dynamics, and vibrational coupling. While ab initio molecular dynamics (AIMD) provides accurate, atomistic resolution of such dynamics, it becomes prohibitively expensive for non-equilibrium processes that require many independent trajectories to capture the stochastic nature of excitation and relaxation. To address this, we implemented a machine learning potential that incorporates time-dependent electric fields in a perturbative fashion, retaining AIMD-level accuracy. Using this approach, we simulate the time-dependent response of liquid water to a 12.3 THz Gaussian pump pulse (1.3 ps width), generating 32 ns of total trajectory data, tracking in real time how the pulse transiently perturbs the hydrogen bond network. With access to ab initio-quality electronic structure, we compute absorption coefficients and frequency-dependent refractive indices before, during, and after the pulse. The simulations reproduce key experimental observables, including transient dichroism, transient birefringence, and relaxation times. We observe that the pulse first drives librational excitation and then funnels energy into translational and intramolecular vibrations. We find a transient disruption of the hydrogen-bond network and reorganization times suggesting that THz pulses can transiently modulate water's solvation environment. These findings demonstrate the method's ability to capture essential non-equilibrium dynamics with theoretical time-dependent IR spectroscopy and establish a broadly applicable framework for studying field-driven processes in complex molecular systems.

