Alloy Formation of Gold−Silver Nanoparticles and the Dependence of the Plasmon Absorption on Their Composition
Author(s) -
Stephan Link,
Zhong Lin Wang,
Mostafa A. ElSayed
Publication year - 1999
Publication title -
the journal of physical chemistry b
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.864
H-Index - 392
eISSN - 1520-6106
pISSN - 1520-5207
DOI - 10.1021/jp990387w
Subject(s) - silver nitrate , high resolution transmission electron microscopy , alloy , materials science , absorption (acoustics) , silver nanoparticle , plasmon , analytical chemistry (journal) , absorption spectroscopy , colloidal gold , mole fraction , transmission electron microscopy , nanoparticle , aqueous solution , molar absorptivity , chemistry , nuclear chemistry , nanotechnology , metallurgy , optics , chromatography , composite material , physics , optoelectronics
Gold−silver alloy nanoparticles with varying mole fractions are prepared in aqueous solution by the co-reduction of chlorauric acid HAuCl4 and silver nitrate AgNO3 with sodium citrate. As the optical absorption spectra of their solutions show only one plasmon absorption it is concluded that mixing of gold and silver leads to a homogeneous formation of alloy nanoparticles. The maximum of the plasmon band blue-shifts linearly with increasing silver content. This fact cannot be explained by a simple linear combination of the dielectric constants of gold and silver within the Mie theory. On the other hand, the extinction coefficient is found to decrease exponentially rather than linearly with increasing gold mole fraction xAu. Furthermore, the size distribution of the alloy nanoparticles is examined using transmission electron microscopy (TEM). High-resolution TEM (HRTEM) also confirms the formation of homogeneous gold−silver alloy nanocrystals.
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