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Qijun Ye

Publications and source records attributed to Qijun Ye.

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Lee-Yang Theory Guided Force Field Refinement Based on Phase Diagrams

We propose a general framework for automatic force field refinement guided by phase diagrams, grounded in Lee-Yang phase transition theory. The central idea is to directly use the partition function modulus as a phase-diagram-guided optimization target. Evaluating the modulus at points close to the real axis, where the Lee-Yang zeros are mostly associated with the phase transition, is more physically meaningful and avoids the numerical difficulty of explicitly solving for the zeros. This approach requires no system-specific order parameters or response properties for characterizing phase transition points, making it universal across various discontinuous phase transitions and material systems. We validate the method on refining parameters of a Lennard-Jones potential covering both gas-liquid and solid-liquid transitions, and a Cu embedded-atom method potential based on experimental melting curves. The refined force fields reproduce the target phase diagrams with significant improvement across all systems. For Cu, the refinement simultaneously improves predictions of enthalpy and heat capacity, which are observables beyond the optimization target. These results establish Lee-Yang theory as a practical tool for contemporary force field development.

cond-mat.stat-mech

Determination of melting temperature of hexagonal ice using Lee-Yang phase transition theory

Lee-Yang phase transition theory is a milestone in statistical physics. Its applications in realistic systems, however, had been substantially hindered by availability of practical schemes to calculate the Lee-Yang zeros. In this manuscript, we extend the scheme we have designed earlier [Phys. Rev. E 109, 024118 (2024)] and report simulation results for the melting temperature (T) of ice Ih under ambient pressure. The enhanced sampling technique is shown to be crucial for accessing Lee-Yang zeros accurately. The real and imaginary parts of our Lee-Yang edges demonstrate linear scaling of sizes, which can lead to a melting T of 248.15 K for the TIP4P/2005 potential in the thermodynamic limit. This result is in close quantitative agreement with previous coexistence simulations, achieved with cheaper computational costs and without prior knowledge of the phase transition. With these, we demonstrate the applicability of Lee-Yang phase transition theory in realistic molecular systems, and provide a feasible scheme for high-throughput calculations in determining the phase transition temperature.

cond-mat.stat-mech