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Effect of Initiator Density, Catalyst Concentration, and Surface Curvature on the Uniformity of Polymers Grafted from Spherical Nanoparticles

delete2026-01-01
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PRE
AI
R
Rongguan Yin
H
Hanshu Wu
X
Xiaolei Hu
K
Khidong Kim
D
Dagmar R. D’hooge
E
Edmondo M. Benetti
M
Michael R. Bockstaller
K
Krzysztof Matyjaszewski
DOI:10.1021/acs.macromol.5c02737delete
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Abstract

Abstract

En 中文
Polymer-grafted nanoparticles (PGNPs) are versatile hybrid materials whose properties critically depend on brush dimensions, uniformity, and grafting density. Herein, we systematically investigated how initiator density, catalyst concentration, and nanoparticle curvature govern the growth of poly(methyl methacrylate) (PMMA) brushes grafted from spherical SiO2 nanoparticles via surface-initiated activators regenerated by electron transfer atom transfer radical polymerization (SI-ARGET ATRP). By tuning the initiator density through a combination of active and dummy silane initiators anchored on the nanoparticles' surface and controlling the catalyst concentration, we reveal that increased initiator crowding and smaller surface curvature amplify steric hindrance, leading to decreased initiation efficiency and broader molecular weight distributions. Correlation with the corresponding unattached chains by ARGET ATRP suggests the presence of permanently inaccessible (buried) initiation sites, which are a characteristic of surface-grafted systems. At sufficient Cu catalyst concentrations, uniform brush growth is attained across different initiator densities, whereas decreased catalyst concentrations accentuate nonconcurrent initiation and propagation. These findings provide mechanistic insights into the interplay of initiator density, catalyst concentration, and surface curvature, offering design principles for tailoring the PGNP architecture. These results can guide the structural engineering of densely grafted surfaces, including nanoparticles and flat substrates, for applications in nanocomposites, photonics, and functional coatings.
Keywords:
RADICAL POLYMERIZATION
PARTICLE BRUSHES
ARGET ATRP
DISPERSITY
NANOCOMPOSITES

Journal

Macromolecules cover
Macromolecules
IF:
5.2
Papers:
3.6W
Citations:
9.4W

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G
Ghent University
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U
university of padua
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Papers: 1.6K
Citations: 0
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carnegie mellon university
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Papers: 880
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