A symmetrical method to obtain shear moduli from microrheology
Abstract
Passive microrheology typically deduces shear elastic loss and storage moduli from displacement time series or mean-squared displacement (MSD) of thermally fluctuating probe particles in equilibrium materials. Common data analysis methods use either Kramers-Kronig (KK) transformations or functional fitting to calculate frequency-dependent loss and storage moduli. We propose a new analysis method for passive microrheology that avoids the limitations of both of these approaches. In this method, we determine both real and imaginary components of the complex, frequency-dependent response function as direct integral transforms of the MSD of thermal particle motion. This procedure significantly improves the high-frequency fidelity of relative to the use of KK transformation, which has been shown to lead to artifacts in . We test our method on both model data and experimental data. Experiments were performed on solutions of worm-like micelles and dilute collagen solutions. While the present method agrees well with established KK-based methods at low frequencies, we demonstrate significant improvement at high frequencies using our symmetric analysis method, up to almost the fundamental Nyquist limit.
Cite
@article{arxiv.1712.07213,
title = {A symmetrical method to obtain shear moduli from microrheology},
author = {Kengo Nishi and Maria L. Kilfoil and Christoph F. Schmidt and Fred C. MacKintosh},
journal= {arXiv preprint arXiv:1712.07213},
year = {2017}
}
Comments
8 pages, 4 figures