Microstructural pattern formation during liquid metal dealloying: Phase-field simulations and theoretical analyses
Longhai Lai, Pierre-Antoine Geslin, Alain Karma

TL;DR
This study combines phase-field simulations and theoretical analysis to understand the mechanisms of microstructural pattern formation during liquid metal dealloying, revealing the influence of solid-state diffusion and initial conditions on the process.
Contribution
It introduces a comprehensive theoretical and simulation framework to analyze the kinetics and pattern formation in liquid metal dealloying, including the effects of solid-state diffusion.
Findings
Solid-state diffusion significantly affects dealloying kinetics and morphology.
A linear stability analysis predicts initial ligament length-scale.
Two regimes govern the 1D dissolution process of the precursor alloy.
Abstract
In recent years, liquid metal dealloying (LMD) has emerged as a promising material processing method to generate micro and nano-scale bicontinuous or porous structures. Most previous studies focused on the experimental characterization of the dealloying process and on the properties of the dealloyed materials, leaving the theoretical study incomplete to fully understand the fundamental mechanisms of LMD. In this paper, we use theoretical models and phase-field simulations to clarify the kinetics and pattern formation during LMD. Our study starts from a theoretical analysis of the 1D dissolution of a binary precursor alloy, which reveals that the 1D dissolution process involves two regimes. In the first regime, due to the low solubility of one of the elements in the melt, it accumulates at the solid-liquid interface, which reduces the dissolution kinetics. In the second regime, the…
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