Gas-phase synthesis and time-resolved composition analysis of CuZn nanoparticles
Artikel i vetenskaplig tidskrift, 2026

Bimetallic CuZn (brass) nanoparticles are key materials in catalytic applications, yet access to the full compositional range remains challenging using conventional wet chemical synthesis. In this study, we demonstrate the physical synthesis of CuZn nanoparticles across a broad compositional range using spark ablation of alloyed feedstocks (Cu25Zn75, Cu50Zn50, Cu75Zn25). In spark ablation, the nanoparticles are formed directly in the gas phase without the need for post-synthesis treatments and exhibit complete internal mixing, as confirmed by (scanning) transmission electron microscopy ((S)TEM) and energy-dispersive X-ray spectroscopy (EDS). A pronounced evolution over time in nanoparticle composition was observed during continuous generation. To elucidate the underlying mechanisms, a comprehensive set of advanced, time-resolved characterization techniques was employed, including X-ray fluorescence (XRF) of deposited nanoparticles, optical emission spectroscopy (OES) of the spark plasma, in-flight inductively coupled plasma mass spectrometry (ICP-MS), and in-flight X-ray photoelectron spectroscopy (XPS). These complementary characterization methods reveal a gradual compositional evolution linked to changes at the feedstock surface rather than post-formation processes. The results indicate that preferential Zn evaporation governs the temporal evolution of the nanoparticle composition, followed by the establishment of a dynamic steady state during prolonged sparking. Based on the experimental observations, a qualitative mechanism supported by a simple ablation model is proposed to explain the compositional evolution in CuZn spark ablation. Despite the large differences in thermophysical properties between Cu and Zn, a broad Cu–Zn compositional range can be accessed, with stable nanoparticle compositions achieved upon extended operation. This work provides insight into bimetallic nanoparticle formation via spark ablation and how tunable alloy compositions can be achieved via gas-phase synthesis, with direct relevance for catalytic and other composition-sensitive applications.

Författare

Linnéa Jönsson

Lunds universitet

Vinzent Olszok

Technischen Universität Clausthal

D. Megyeri

University of Szeged

Thomas Krinke

Lunds universitet

Calle Preger

Max IV-laboratoriet

Lunds universitet

Jenny Rissler

Lunds universitet

Axel C. Eriksson

Lunds universitet

Zs Geretovszky

University of Szeged

K. Deppert

Lunds universitet

Alfred P. Weber

Technischen Universität Clausthal

Attila Kohut

University of Szeged

Maria Messing

Chalmers, Mikroteknologi och nanovetenskap

Lunds universitet

Nanoscale Advances

25160230 (eISSN)

Vol. In Press

Ämneskategorier (SSIF 2025)

Materialkemi

Annan kemi

Den kondenserade materiens fysik

DOI

10.1039/d6na00440g

PubMed

42434364

Relaterade dataset

Data supporting article [dataset]

DOI: 10.1039/d6na00440

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Senast uppdaterat

2026-07-17