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Core–Satellite Gold Nanoparticle Complexes Grown by Inert Gas-Phase Condensation
Author(s) -
J. Zhao,
Álvaro Mayoral,
L. Martı́nez,
Mikael P. Johansson,
Flyura Djurabekova,
Yves Huttel
Publication year - 2020
Publication title -
the journal of physical chemistry c
Language(s) - Uncategorized
Resource type - Journals
eISSN - 1932-7455
pISSN - 1932-7447
DOI - 10.1021/acs.jpcc.0c07346
Subject(s) - nanoparticle , condensation , inert gas , nanotechnology , colloidal gold , materials science , transmission electron microscopy , inert , chemical engineering , sputter deposition , phase (matter) , sputtering , chemical physics , chemistry , thin film , organic chemistry , physics , composite material , engineering , thermodynamics
Spontaneous growth of complexes consisted of a number of individual nanoparticles in a controlled manner, particularly in demanding environments of gas-phase synthesis, is a fascinating opportunity for numerous potential applications. Here, we report the formation of such core-satellite gold nanoparticle structures grown by magnetron sputtering inert gas condensation. Combining high-resolution scanning transmission electron microscopy and computational simulations, we reveal the adhesive and screening role of H 2 O molecules in formation of stable complexes consisted of one nanoparticle surrounded by smaller satellites. A single layer of H 2 O molecules, condensed between large and small gold nanoparticles, stabilizes positioning of nanoparticles with respect to one another during milliseconds of the synthesis time. The lack of isolated small gold nanoparticles on the substrate is explained by Brownian motion that is significantly broader for small-size particles. It is inferred that H 2 O as an admixture in the inert gas condensation opens up possibilities of controlling the final configuration of the different noble metal nanoparticles.

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