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Title: The mobilities of micro- and nano-particles at interfaces of nematic liquid crystals

Journal Article · · Soft Matter
DOI:https://doi.org/10.1039/C1SM06794J· OSTI ID:1616851
 [1];  [1];  [1]
  1. Univ. of Wisconsin, Madison, WI (United States). Dept. of Chemical and Biological Engineering

Here, we report the use of single-particle tracking to measure the diffusion coefficients of chemically functionalized micro- and nano-particles at interfaces between aqueous phases and a nematic liquid crystal (LC). For hydrophobic particles with diameters of 2.3 ± 0.2 μm that homeotropically anchor the LC, we measured anisotropic diffusion, qualitatively consistent with the influence of nematic ordering of the LC at the interface on the local rheological environment. Analysis of the magnitudes of the diffusion coefficients reveals that the ordering of the LC about the microparticles is perturbed in the interfacial environment relative to the bulk, leading to low drag on the microparticles at the aqueous–nematic interface. In contrast, for hydrophobic nanoparticles (diameters of 141 ± 11 nm) at the LC–aqueous interface, almost indistinguishable diffusion coefficients were measured at the interface and in bulk LC when the displacements of the nanoparticles in the two environments were in the same directions relative to the far-field director of the LC. These results and others reported in this paper reveal fundamental differences that exist between the interfacial mobilities of micro- and nanoparticles at LC–aqueous interfaces, and that a relative insensitivity to interfacial environment appears to be a property of the smaller particles studied in our experiments. These results are reported on in light of past studies of the diffusion of particles at either isotropic liquid interfaces or in bulk LCs.

Research Organization:
Univ. of Wisconsin, Madison, WI (United States); Univ. of Chicago, IL (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES); National Science Foundation (NSF)
Grant/Contract Number:
SC0004025; DMR-0425880
OSTI ID:
1616851
Journal Information:
Soft Matter, Vol. 8, Issue 6; ISSN 1744-683X
Publisher:
Royal Society of ChemistryCopyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 17 works
Citation information provided by
Web of Science

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Cited By (4)

Reversible Switching of Liquid Crystalline Order Permits Synthesis of Homogeneous Populations of Dipolar Patchy Microparticles journal August 2014
Transport of particles in liquid crystals journal January 2014
Effect of Collective Molecular Reorientations on Brownian Motion of Colloids in Nematic Liquid Crystal journal December 2013
Effect of collective molecular reorientations on Brownian motion of colloids in nematic liquid crystal text January 2013