Spray drying formulation of hollow spherical aggregates of silica nanoparticles by experimental design

Wean Sin Cheow, Selina Li, Kunn Hadinoto*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

101 Citations (Scopus)

Abstract

The present work employs an experimental design methodology to optimize the spray-drying production of micron-size hollow aggregates of biocompatible silica nanoparticles that are aimed to serve as drug delivery vehicles in inhaled photodynamic therapy. To effectively deliver the nanoparticles to the lung, the aerodynamic size (dA) of the nano-aggregates, which is a function of the geometric size (dG) and the degree of hollowness, must fall within a narrow range between 2 and 4μm. The results indicate that (1) the feed concentration, (2) the feed pH, and (3) the ratio of the gas atomizing flow rate to the feed rate are the three most significant parameters governing the nano-aggregate morphology. Spray drying at a low pH (<7) and at a low feed concentration (<1%, w/w) generally results in nano-aggregates having small geometric and aerodynamic sizes (dA=dG≈3μm) with a relatively monodisperse size distribution. Spray drying at a higher feed concentration produces nano-aggregates having a larger dG but with a multimodal particle size distribution. A trade-off therefore exists between having large dG to improve the aerosolization efficiency and obtaining a uniform particle size distribution to improve the dose uniformity.

Original languageEnglish
Pages (from-to)673-685
Number of pages13
JournalChemical Engineering Research and Design
Volume88
Issue number5-6
DOIs
Publication statusPublished - May 2010
Externally publishedYes

ASJC Scopus Subject Areas

  • General Chemistry
  • General Chemical Engineering

Keywords

  • Dry powder inhaler
  • Nano-aggregates
  • Photodynamic therapy
  • Silica nanoparticles
  • Spray drying

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