Breaking the wire: the impact of critical length on melting pathways in silver nanowires

Fuente: arXiv
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Main Authors: Ridings, Kannan M, Vaka'uta, Eneasi E L, Croot, Sam M
Format: Preprint
Published: 2024
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author Ridings, Kannan M
Vaka'uta, Eneasi E L
Croot, Sam M
author_facet Ridings, Kannan M
Vaka'uta, Eneasi E L
Croot, Sam M
contents We explore the melting mechanisms of silver nanowires through molecular dynamics simulations and theoretical modelling, where we observe that two distinct mechanisms or pathways emerge that dictate how the solid-liquid interface melts during the phase transition. For wires longer than a critical length ($L>L_{\textrm{crit}}$), an Arrhenius-type diffusion model successfully predicts the solid-liquid interface velocity, highlighting diffusion-driven melting pathways. In contrast, wires shorter than the critical length ($L\leq L_{\textrm{crit}}$) exhibit unique behaviours driven by non-equilibrium effects, including rapid overheating of the solid core, stabilization of the solid-liquid interface, and the pronounced impact of higher energy densities. These mechanisms lead to accelerated melting and distinct phase transition dynamics. Our findings reveal how geometry and nanoscale effects critically shape melting behaviour, offering insights for the design and stability of nanostructures in advanced applications.
format Preprint
id arxiv_https___arxiv_org_abs_2411_12891
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Breaking the wire: the impact of critical length on melting pathways in silver nanowires
Ridings, Kannan M
Vaka'uta, Eneasi E L
Croot, Sam M
Mesoscale and Nanoscale Physics
Materials Science
We explore the melting mechanisms of silver nanowires through molecular dynamics simulations and theoretical modelling, where we observe that two distinct mechanisms or pathways emerge that dictate how the solid-liquid interface melts during the phase transition. For wires longer than a critical length ($L>L_{\textrm{crit}}$), an Arrhenius-type diffusion model successfully predicts the solid-liquid interface velocity, highlighting diffusion-driven melting pathways. In contrast, wires shorter than the critical length ($L\leq L_{\textrm{crit}}$) exhibit unique behaviours driven by non-equilibrium effects, including rapid overheating of the solid core, stabilization of the solid-liquid interface, and the pronounced impact of higher energy densities. These mechanisms lead to accelerated melting and distinct phase transition dynamics. Our findings reveal how geometry and nanoscale effects critically shape melting behaviour, offering insights for the design and stability of nanostructures in advanced applications.
title Breaking the wire: the impact of critical length on melting pathways in silver nanowires
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2411.12891