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Paranematic-to-nematic ordering of a binary mixture of rodlike liquid crystals confined in cylindrical nanochannels. | LitMetric

AI Article Synopsis

  • The study investigates optical birefringence in nematic binary mixtures of 6CB and 7CB within nanochannels of alumina and silica membranes, focusing on how the channel radius affects nematic ordering.
  • The behavior of the mixtures changes based on channel size, leading to either continuous or discontinuous nematic ordering, both showing a unique paranematic precursor behavior influenced by the channel walls.
  • Results indicate that the nematic behavior remains consistent with bulk properties and that no specific adsorption occurs at the channel walls, suggesting that the mixtures maintain their composition even under confinement for larger channel diameters.

Article Abstract

We explore the optical birefringence of the nematic binary mixtures 6CB_{1-x}7CB_{x} (0 ≤ x ≤ 1) embedded into parallel-aligned nanochannels of mesoporous alumina and silica membranes for channel radii of 3.4 ≤ R ≤ 21.0 nm. The results are compared with the bulk behavior and analyzed with a Landau-de Gennes model. Depending on the channel radius the nematic ordering in the cylindrical nanochannels evolves either discontinuously (subcritical regime, nematic ordering field σ<1/2) or continuously (overcritical regime, σ>1/2), but in both cases with a characteristic paranematic precursor behavior. The strength of the ordering field, imposed by the channel walls, and the magnitude of quenched disorder varies linearly with the mole fraction x and scales inversely proportionally with R for channel radii larger than 4 nm. The critical pore radius, R_{c}, separating a continuous from a discontinuous paranematic-to-nematic evolution varies linearly with x and differs negligibly between the silica and alumina membranes. We find no hints of preferred adsorption of one species at the channels walls. By contrast, a linear variation of the nematic-to-paranematic transition point T_{PN} and of the nematic ordering field σ versus x suggests that the binary mixtures of cyanobiphenyls 6CB and 7CB keep their homogeneous bulk stoichiometry also in nanoconfinement, at least for channel diameters larger than ∼7 nm.

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Source
http://dx.doi.org/10.1103/PhysRevE.89.062501DOI Listing

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