Quantitative Measure of the Size Dispersity in Ultrasmall Fluorescent Organic-Inorganic Hybrid Core-Shell Silica Nanoparticles by Small-angle X-ray Scattering.

Quantitative Measure of the Size Dispersity in Ultrasmall Fluorescent Organic-Inorganic Hybrid Core-Shell Silica Nanoparticles by Small-angle X-ray Scattering.
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DOI:
10.1021/acs.chemmater.8b04369
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发表时间:
2019-01
期刊:
Chemistry of materials : a publication of the American Chemical Society
影响因子:
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通讯作者:
Katherine P Barteau;K. Ma;Ferdinand F. E. Kohle;Thomas C. Gardinier;P. Beaucage;R. Gillilan;Ulrich B Wiesner
Katherine P Barteau;K. Ma;Ferdinand F. E. Kohle;Thomas C. Gardinier;P. Beaucage;R. Gillilan;Ulrich B Wiesner
中科院分区:
其他
文献类型:
--
作者:
Katherine P Barteau;K. Ma;Ferdinand F. E. Kohle;Thomas C. Gardinier;P. Beaucage;R. Gillilan;Ulrich B Wiesner

文献摘要

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Small-angle X-ray scattering (SAXS) was performed on dispersions of ultrasmall (d < 10 nm) fluorescent organic-inorganic hybrid core-shell silica nanoparticles synthesized in aqueous solutions (C' dots) by using an oscillating flow cell to overcome beam induced particle degradation. Form factor analysis and fitting was used to determine the size and size dispersity of the internal silica core containing covalently encapsulated fluorophores. The structure of the organic poly(ethylene glycol) (PEG) shell was modelled as a monodisperse corona containing concentrated and semi-dilute regimes of decaying density and as a simple polydisperse shell to determine the bounds of dispersity in the overall hybrid particle. C' dots containing single growth step silica cores have dispersities of 0.19-0.21; growth of additional silica shells onto the core produces a thin, dense silica layer, and increases the dispersity to 0.22-0.23. Comparison to FCS and DLS measures of size shows good agreement with SAXS measured and modelled sizes and size dispersities. Finally, comparison of a set of same sized and purified particles demonstrates that SAXS is sensitive to the skewness of the gel permeation chromatography elugrams of the original as-made materials. These and other insights provided by quantitative SAXS assessments may become useful for generation of robust nanoparticle design criteria necessary for their successful and safe use, for example in nanomedicine and oncology applications.