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Pickering emulsions stabilized by cellulose nanocrystals grafted with thermo-responsive polymer brushes. | LitMetric

AI Article Synopsis

  • The study investigates the use of cellulose nanocrystals (CNCs) from ramie fibers as stabilizers for oil-in-water emulsions, specifically using heptane and water systems.
  • Modified CNCs, grafted with thermo-responsive poly(NIPAM) brushes, successfully stabilize stable emulsions for up to 4 months, in contrast to unmodified CNCs.
  • The stability of these emulsions is temperature-sensitive, as heating above a certain temperature causes them to break, which is linked to changes in the properties of the poly(NIPAM) grafts, and the effects can be mitigated by adding salt.

Article Abstract

Cellulose nanocrystals (CNCs) from ramie fibers are studied as stabilizers of oil-in-water emulsions. The phase behavior of heptane and water systems is studied, and emulsions stabilized by CNCs are analyzed by using drop sizing (light scattering) and optical, scanning, and freeze-fracture electron microscopies. Water-continuous Pickering emulsions are produced with cellulose nanocrystals (0.05-0.5 wt%) grafted with thermo-responsive poly(NIPAM) brushes (poly(NIPAM)-g-CNCs). They are observed to be stable during the time of observation of 4 months. In contrast, unmodified CNCs are unable to stabilize heptane-in-water emulsions. After emulsification, poly(NIPAM)-g-CNCs are observed to form aligned, layered structures at the oil-water interface. The emulsions stabilized by poly(NIPAM)-g-CNCs break after heating at a temperature above the LCST of poly(NIPAM), which is taken as indication of the temperature responsiveness of the brushes installed on the particles and thus the responsiveness of the Pickering emulsions. This phenomenon is further elucidated via rheological measurements, in which viscosities of the Pickering emulsions increase on approach of the low critical solution temperature of poly(NIPAM). The effect of temperature can be counterbalanced with the addition of salt which is explained by the reduction of electrostatic and steric interactions of poly(NIPAM)-g-CNCs at the oil-water interface.

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Source
http://dx.doi.org/10.1016/j.jcis.2011.12.011DOI Listing

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