September 30, 2026
Journal Article

Molecular Surface Chemistry Drives Anomalous Clustering of Ultrasmall Silica Nanoparticles

Abstract

Silica nanoparticles are expected to remain stable at alkaline pH because deprotonated silanol groups lead to a strong electrostatic interparticle repulsion. Here, we show that this mean-field expectation fails for ultrasmall silica nanoparticles. Electron microscopy, dynamic light scattering, and small angle x-ray scattering (SAXS) show that 9 nm silica nanoparticles form finite equilibrium clusters at pH 8.7, whereas larger particles remain dispersed under identical conditions. SAXS analysis demonstrates that interactions between smaller nanoparticles cannot be described by typical screened electrostatics alone and require an additional short-range attractive contribution. Surface-sensitive measurements show that decreasing particle size increases hydroxylated silanol groups, alters interfacial charge density, and enhances the contribution of higher-pKa proton-active sites. The cluster size reaches a maximum when pH approaches the higher-pKa, identifying surface protonation state as a key descriptor. These results show that molecular surface chemistry drives pH-dependent attractions in ultrasmall silica nanoparticles beyond mean-field electrostatics.

Published: September 30, 2026

Citation

Patel R., G. Rother, N. Pesika, G.A. Kimmel, Y. Levin, G.K. Schenter, and C.J. Mundy, et al. 2026. Molecular Surface Chemistry Drives Anomalous Clustering of Ultrasmall Silica Nanoparticles. The Journal of Physical Chemistry Letters 17, no. 29:8270–8276. PNNL-SA-223569. doi:10.1021/acs.jpclett.6c01796

Research topics