Please use this identifier to cite or link to this item: https://doi.org/10.1038/s41467-018-04410-6
Title: Revealing isoelectronic size conversion dynamics of metal nanoclusters by a noncrystallization approach
Authors: Yao, Q 
Fung, V
Sun, C
Huang, S
Chen, T 
Jiang, D.-E
Lee, J.Y 
Xie, J 
Keywords: gold nanoparticle
nanocluster
nanoparticle
unclassified drug
chemical reaction
crystallization
crystallography
electron
ligand
mass spectrometry
metal
nanomaterial
nanoparticle
size
absorption spectroscopy
Article
atom
chemical bond
chemical modification
chemical reaction
chemical structure
electron
electrospray mass spectrometry
kinetics
molecular dynamics
particle size
tandem mass spectrometry
Issue Date: 2018
Publisher: Nature Publishing Group
Citation: Yao, Q, Fung, V, Sun, C, Huang, S, Chen, T, Jiang, D.-E, Lee, J.Y, Xie, J (2018). Revealing isoelectronic size conversion dynamics of metal nanoclusters by a noncrystallization approach. Nature Communications 9 (1) : 1979. ScholarBank@NUS Repository. https://doi.org/10.1038/s41467-018-04410-6
Abstract: Atom-by-atom engineering of nanomaterials requires atomic-level knowledge of the size evolution mechanism of nanoparticles, which remains one of the greatest mysteries in nanochemistry. Here we reveal atomic-level dynamics of size evolution reaction of molecular-like nanoparticles, i.e., nanoclusters (NCs) by delicate mass spectrometry (MS) analyses. The model size-conversion reaction is [Au23(SR)16]- ? [Au25(SR)18]- (SR = thiolate ligand). We demonstrate that such isoelectronic (valence electron count is 8 in both NCs) size-conversion occurs by a surface-motif-exchange-induced symmetry-breaking core structure transformation mechanism, surfacing as a definitive reaction of [Au23(SR)16]- + 2 [Au2(SR)3]- ? [Au25(SR)18]- + 2 [Au(SR)2]-. The detailed tandem MS analyses further suggest the bond susceptibility hierarchies in feed and final Au NCs, shedding mechanistic light on cluster reaction dynamics at atomic level. The MS-based mechanistic approach developed in this study also opens a complementary avenue to X-ray crystallography to reveal size evolution kinetics and dynamics. © 2018 The Author(s).
Source Title: Nature Communications
URI: https://scholarbank.nus.edu.sg/handle/10635/174220
ISSN: 2041-1723
DOI: 10.1038/s41467-018-04410-6
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