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Shear-free mixing to achieve accurate temporospatial nanoscale kinetics through scanning-SAXS: ion-induced phase transition of dispersed cellulose nanocrystals

  • Tomas Rosén
  • , Ruifu Wang
  • , Hong Rui He
  • , Chengbo Zhan
  • , Shirish Chodankar
  • , Benjamin S. Hsiao
  • Stony Brook University
  • KTH Royal Institute of Technology
  • Brookhaven National Laboratory

Research output: Contribution to journalArticlepeer-review

9 Scopus citations

Abstract

Time-resolvedin situcharacterization of well-defined mixing processes using small-angle X-ray scattering (SAXS) is usually challenging, especially if the process involves changes of material viscoelasticity. In specific, it can be difficult to create a continuous mixing experiment without shearing the material of interest; a desirable situation since shear flow both affects nanoscale structures and flow stability as well as resulting in unreliable time-resolved data. Here, we demonstrate a flow-focusing mixing device forin situnanostructural characterization using scanning-SAXS. Given the interfacial tension and viscosity ratio between core and sheath fluids, the core material confined by sheath flows is completely detached from the walls and forms a zero-shear plug flow at the channel center, allowing for a trivial conversion of spatial coordinates to mixing times. With this technique, the time-resolved gel formation of dispersed cellulose nanocrystals (CNCs) was studied by mixing with a sodium chloride solution. It is observed how locally ordered regions, so called tactoids, are disrupted when the added monovalent ions affect the electrostatic interactions, which in turn leads to a loss of CNC alignment through enhanced rotary diffusion. The demonstrated flow-focusing scanning-SAXS technique can be used to unveil important kinetics during structural formation of nanocellulosic materials. However, the same technique is also applicable in many soft matter systems to provide new insights into the nanoscale dynamics during mixing.

Original languageEnglish
Pages (from-to)1084-1095
Number of pages12
JournalLab on a Chip
Volume21
Issue number6
DOIs
StatePublished - Mar 21 2021

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