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Facile control of silica nanoparticles using a novel solvent varying method for the fabrication of artificial opal photonic crystals.


ABSTRACT: In this work, the Stöber process was applied to produce uniform silica nanoparticles (SNPs) in the meso-scale size range. The novel aspect of this work was to control the produced silica particle size by only varying the volume of the solvent ethanol used, whilst fixing the other reaction conditions. Using this one-step Stöber-based solvent varying (SV) method, seven batches of SNPs with target diameters ranging from 70 to 400 nm were repeatedly reproduced, and the size distribution in terms of the polydispersity index (PDI) was well maintained (within 0.1). An exponential equation was used to fit the relationship between the particle diameter and ethanol volume. This equation allows the prediction of the amount of ethanol required in order to produce particles of any target diameter within this size range. In addition, it was found that the reaction was completed in approximately 2 h for all batches regardless of the volume of ethanol. Structurally coloured artificial opal photonic crystals (PCs) were fabricated from the prepared SNPs by self-assembly under gravity sedimentation. Figure??.

SUBMITTER: Gao W 

PROVIDER: S-EPMC5161756 | biostudies-literature | 2016

REPOSITORIES: biostudies-literature

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Facile control of silica nanoparticles using a novel solvent varying method for the fabrication of artificial opal photonic crystals.

Gao Weihong W   Rigout Muriel M   Owens Huw H  

Journal of nanoparticle research : an interdisciplinary forum for nanoscale science and technology 20161217 12


In this work, the Stöber process was applied to produce uniform silica nanoparticles (SNPs) in the meso-scale size range. The novel aspect of this work was to control the produced silica particle size by only varying the volume of the solvent ethanol used, whilst fixing the other reaction conditions. Using this one-step Stöber-based solvent varying (SV) method, seven batches of SNPs with target diameters ranging from 70 to 400 nm were repeatedly reproduced, and the size distribution in terms of  ...[more]

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