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Interfacial Rheology of an Ultrathin Nanocrystalline Film Formed at the Liquid/Liquid Interface

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dc.contributor.author Krishnaswamy, Rema
dc.contributor.author Majumdar, Sayantan
dc.contributor.author Ganapathy, Rajesh
dc.contributor.author Agarwal, Ved Varun
dc.contributor.author Sood, A K
dc.contributor.author Rao, C N R
dc.date.accessioned 2012-02-09T09:43:15Z
dc.date.available 2012-02-09T09:43:15Z
dc.date.issued 2007-03-13
dc.identifier 0743-7463 en_US
dc.identifier.citation Langmuir 23(6), 3084-3087 (2007) en_US
dc.identifier.uri https://libjncir.jncasr.ac.in/xmlui/10572/360
dc.description Restricted Access en_US
dc.description.abstract We report the interfacial properties of monolayers of Ag nanoparticles 10-50 nm in diameter formed at the toluene-water interface under steady as well as oscillatory shear. Strain amplitude sweep measurements carried out on the film reveal a shear thickening peak in the loss moduli (G") at large amplitudes followed by a power law decay of the storage (G') and loss moduli with exponents in the ratio 2:1. In the frequency sweep measurements at low frequencies, the storage modulus remains nearly independent of the angular frequency, whereas G" reveals a power law dependence with a negative slope, a behavior reminiscent of soft glassy systems. Under steady shear, a finite yield stress is observed in the limit of shear rate gamma going to zero. However, for gamma > 1 s(-1), the shear stress increases gradually. In addition, a significant deviation from the Cox-Merz rule confirms that the monolayer of Ag nanoparticles at the toluene-water interface forms a soft two-dimensional colloidal glass. en_US
dc.description.uri http://dx.doi.org/10.1021/la063236a en_US
dc.language.iso en en_US
dc.publisher American Chemical Society en_US
dc.rights © 2007 American Chemical Society en_US
dc.subject Liquid-Liquid Interface en_US
dc.subject Soft Glassy Materials en_US
dc.subject Viscoelasticity en_US
dc.subject Gas/Liquid en_US
dc.subject Monolayers en_US
dc.subject Particles en_US
dc.title Interfacial Rheology of an Ultrathin Nanocrystalline Film Formed at the Liquid/Liquid Interface en_US
dc.type Article en_US


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