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Tracking metastable phases by complex Lee-Yang zeros

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abstract

Metastable phases (MPs) are energetically unfavorable states typically suppressed in equilibrium phase diagrams. Rather than remaining ''hidden'', we show that they exist in the complex plane of thermal fields, as regions delineated by Lee-Yang zeros (LYZs). We demonstrate this numerically in a toy model with a tunable density of states featuring three Gaussian peaks and in a more realistic periodically driven system. In both cases, as artificial parameters or drive amplitudes increase, the LYZs bounding the MP approach the real axis and split into separated branches, signaling the emergence and stabilization of the MP within the enlarged gap between two adjacent stable phases. In the driven system, the imaginary part of LYZs correlates with drive strength, linking Lee-Yang theory to terahertz matter manipulation. These findings provide a scheme to describe MPs in phase diagram analysis. By viewing periodic drives as complex thermal fields, it also offers a new perspective for understanding and engineering non-equilibrium collective states.

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

cond-mat.stat-mech · 2026-08-09 · conditional · novelty 6.0

A differentiable loss based on the partition function modulus on the Lee-Yang circle refines force fields to match gas-liquid and solid-liquid phase diagrams, with Cu enthalpy and heat capacity improved as out-of-target tests.

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  • Lee-Yang Theory Guided Force Field Refinement Based on Phase Diagrams cond-mat.stat-mech · 2026-08-09 · conditional · none · ref 21 · internal anchor

    A differentiable loss based on the partition function modulus on the Lee-Yang circle refines force fields to match gas-liquid and solid-liquid phase diagrams, with Cu enthalpy and heat capacity improved as out-of-target tests.