Issue 11, 2025

Gold–silver alloy nanoparticle formation via spark ablation: the dynamics of material mixing

Abstract

Binary nanoparticles (BNPs), composed of two distinct materials, offer tailored properties advantageous for various applications, including enhanced catalytic, magnetic, and optical behavior. Among the synthesis methods for BNPs, spark ablation stands out for its capability to produce multicomponent nanostructures with tunable compositions. This study investigates the mixing dynamics of material vapors in spark ablation, a critical step in the process of BNP formation. Using spatially and temporally resolved optical emission spectroscopy (OES), we track the expansion and interaction of gold and silver vapors within the spark gap of a spark discharge generator. The collected data reveal the evolution of the vapor mixing process, complemented by a quantitative model that maps the variation of the gold-to-silver concentration ratio over time and space. We correlate these observations with the composition distribution of synthesized AuAg BNPs, as analyzed by scanning transmission electron microscopy (STEM) with energy-dispersive X-ray spectrometry (EDX). Our findings elucidate key factors influencing the compositional variance of BNPs, facilitating the understanding of the role of vapor mixing in achieving well-controlled particle processes via spark ablation.

Graphical abstract: Gold–silver alloy nanoparticle formation via spark ablation: the dynamics of material mixing

Supplementary files

Article information

Article type
Paper
Submitted
28 Dec 2024
Accepted
02 Apr 2025
First published
03 Apr 2025
This article is Open Access
Creative Commons BY-NC license

Nanoscale Adv., 2025,7, 3322-3330

Gold–silver alloy nanoparticle formation via spark ablation: the dynamics of material mixing

A. Kohut, L. P. Villy, L. Jönsson, D. Megyeri, G. Galbács, M. E. Messing and Z. Geretovszky, Nanoscale Adv., 2025, 7, 3322 DOI: 10.1039/D4NA01076K

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