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Positive Thinking: Countercation Effects in Colloidal Syntheses of Gold Nanoparticles

Research Output:
Journal Article or Conference Article in Journal
Journal article
Peer-review

Open access

Publication Information

Output type

Research Output:
Journal Article or Conference Article in Journal
Journal article
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 15436-15442 (7 pages)

Journal (Volume, Issue Number)

Nano Letters (Volume 25, Issue 42)

Publication milestones

  • Published - 10/10/2025

Publication status

Published - 10/10/2025

ISSN

1530-6992

Publication IDs

  • Scopus: 105019405195

Abstract

Gold nanoparticles (Au NPs) are intensively studied and widely applicable to catalysis, sensing, medical applications, and many more. In particular, citrate- and borohydride- mediated colloidal syntheses of Au NPs are extremely popular. While it can be reasonably expected that countercations have a role to play, there is surprisingly almost no study on the effect of countercations in citrate- and borohydride-mediated colloidal syntheses of Au NPs. It is here shown that the countercation (Li+, Na+, K+) from citrate, borohydride, but also from hydroxide species, plays an overlooked role in the stabilization of gold colloidal dispersions. The stability, size, and degree of shape control over the NP decrease in the order Li+ > Na+ > K+, due to a stronger interaction between the smaller cations and metal surfaces. The findings are directly relevant for further fundamental studies, an improved control of the syntheses and scale-up.

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Funding Details

The authors acknowledge support from the Novo Nordisk Foundation (NNF23OC0081359), Novo Nordisk Foundation Data Science Research Infrastructure 2022 Grant: A high-performance computing infrastructure for data-driven research on sustainable energy materials (NNF22OC0078009), DanScatt beamline staff, MAX IV, Lund, Sweden (proposal ID 20240084), the Danish Agency for Science, Technology, and Innovation for the instrument center DanScatt. Research conducted at MAX IV, a Swedish national user facility, is supported by Vetenskapsradet ̊ (Swedish Research Council, VR, 2018-07152), Vinnova (Swedish Governmental Agency for Innovation Systems, (2018-04969) and Formas (2019-02496). DanMAX is funded by the NUFI (4059-00009B). This work was supported by a research grant (VIL58726) from VILLUM FONDEN and by the Danish National Research Foundation (DNRF189) through the Center of Sustainable Energy Materials.