Probing Ion Diffusion and Ion Sieving through Hollow Porous Silica Shells by Imaging the Mobility of Colloids Inside the Shells

Kanako Watanabe*, Tom A.J. Welling, Rafael G. Mendes, Zahra Peimanifard, Maarten Bransen, Hikaru Namigata, Marijn A. van Huis, Daisuke Nagao, Alfons van Blaaderen*

*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Ionic transport through porous membranes and porous materials has received enormous attention due to its importance to many applications. An innovative methodology is proposed to study ion diffusion and ion sieving through mesoporous silica membranes (shells). The mobility of fluorescently labeled core particles within a hollow porous shell, filled with an index-matched electrolyte solution, is observed using confocal laser scanning microscopy. The core motion range, i.e., the area explored by the core within the hollow compartment, sensitively changed depending on the local ionic concentration. Monitoring transitions in the core motion range is a practical way to detect which ions can migrate through the shells and on what timescale. For instance, lithium and chloride ions easily diffused through the porous silica shells, resulting in a core motion range that changed relatively quickly upon change of the ion concentrations outside of the shell. However, the motion range changed significantly slower upon changing to a bigger cation (tetraoctylammonium ion). This proof of principle experiment can be explained by the Gibbs-Donnan effect, revealing that the detection of core motion ranges is a good probe to measure both ion diffusion and ion sieving through porous membranes.

Original languageEnglish
Article number2400333
Number of pages12
JournalAdvanced Materials Interfaces
Volume11
Issue number29
DOIs
Publication statusPublished - 15 Oct 2024

Bibliographical note

Publisher Copyright:
© 2024 The Author(s). Advanced Materials Interfaces published by Wiley-VCH GmbH.

Keywords

  • confocal laser scanning microscopy
  • hollow particle
  • Ion diffusion
  • ion sieving
  • porous membrane
  • porous silica

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