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A New Insight into Growth Mechanism and Kinetics of Mesoporous Silica Nanoparticles by in Situ Small Angle X-ray Scattering

小角X射线散射 胶束 正硅酸乙酯 介孔材料 介孔二氧化硅 动力学 化学工程 纳米颗粒 材料科学 散射 化学 化学物理 结晶学 纳米技术 物理化学 有机化学 催化作用 水溶液 光学 量子力学 工程类 物理
作者
Zhifeng Yi,Ludovic F. Dumée,Christopher J. Garvey,Chunfang Feng,Fenghua She,James E. Rookes,Stephen Mudie,David M. Cahill,Lingxue Kong
出处
期刊:Langmuir [American Chemical Society]
卷期号:31 (30): 8478-8487 被引量:91
标识
DOI:10.1021/acs.langmuir.5b01637
摘要

The growth mechanism and kinetics of mesoporous silica nanoparticles (MSNs) were investigated for the first time by using a synchrotron time-resolved small-angle X-ray scattering (SAXS) analysis. The synchrotron SAXS offers unsurpassed time resolution and the ability to detect structural changes of nanometer sized objects, which are beneficial for the understanding of the growth mechanism of small MSNs (∼20 nm). The Porod invariant was used to quantify the conversion of tetraethyl orthosilicate (TEOS) in silica during MSN formation, and the growth kinetics were investigated at different solution pH and temperature through calculating the scattering invariant as a function of reaction time. The growth of MSNs was found to be accelerated at high temperature and high pH, resulting in a higher rate of silica formation. Modeling SAXS data of micelles, where a well-defined electrostatic interaction is assumed, determines the size and shape of hexadecyltrimethylammonium bromide (CTAB) micelles before and after the addition of TEOS. The results suggested that the micelle size increases and the micelle shape changes from ellipsoid to spherical, which might be attributed to the solubilization of TEOS in the hydrophobic core of CTAB micelles. A new "swelling–shrinking" mechanism is proposed. The mechanism provides new insights into understanding MSN growth for the formation of functional mesoporous materials exhibiting controlled morphologies. The SAXS analyses were correlated to the structure of CTAB micelles and chemical reaction of TEOS. This study has provided critical information to an understanding of the growth kinetics and mechanism of MSNs.
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