Phase-field model of vapor-liquid-solid nanowire growth
Nan Wang, Moneesh Upmanyu, and Alain Karma

TL;DR
This paper introduces a multi-phase-field model for simulating vapor-liquid-solid nanowire growth, capturing key kinetic processes and interface dynamics, and reproduces experimental growth features through numerical simulations.
Contribution
The paper develops a comprehensive phase-field model that accurately describes nanowire VLS growth, including interface force-balance and anisotropy effects, with rigorous mapping to sharp-interface equations.
Findings
Model reproduces growth normal to substrate with tapering
Captures transitions between growth orientations
Simulates crawling growth along substrate
Abstract
We present a multi-phase-field model to describe quantitatively nanowire growth by the vapor-liquid-solid (VLS) process. The free-energy functional of this model depends on three non-conserved order parameters that distinguish the vapor, liquid, and solid phases. The evolution equations for those order parameters describe basic kinetic processes including the rapid (quasi-instantaneous) equilibration of the liquid catalyst to a droplet shape with constant mean curvature, the slow incorporation of growth atoms at the droplet surface, and crystallization within the droplet. The standard constraint that the sum of the phase fields equals unity and the conservation of the number of catalyst atoms, which relates the catalyst volume to the concentration of growth atoms inside the droplet, are handled via separate Lagrange multipliers. An analysis of the model is presented that rigorously maps…
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