Differential Dynamic Microscopy microrheology of soft materials: a tracking-free determination of the frequency-dependent loss and storage moduli
arXiv:1708.07170 · doi:10.1103/PhysRevMaterials.1.073804
Abstract
Particle tracking microrheology (PT-r) exploits the thermal motion of embedded particles to probe the local mechanical properties of soft materials. Despite its appealing conceptual simplicity, PT-r requires calibration procedures and operating assumptions that constitute a practical barrier to a wider adoption. Here we demonstrate Differential Dynamic Microscopy microrheology (DDM-r), a tracking-free approach based on the multi-scale, temporal correlation study of the image intensity fluctuations that are observed in microscopy experiments as a consequence of the motion of the tracers. We show that the mechanical moduli of an arbitrary sample are determined correctly in a wide frequency range, provided that the standard DDM analysis is reinforced with a novel, iterative, self-consistent procedure that fully exploits the multi-scale information made available by DDM. Our approach to DDM-r does not require any prior calibration, is in agreement with both traditional rheology and Diffusing Wave Spectroscopy microrheology, and works in conditions where PT-r fails, providing thus an operationally simple, calibration-free probe of soft materials.
10 pages, 5 figures
References in corpus (4)
- Differential Dynamic Microscopy: Probing wave vector dependent dynamics with a microscope
- Differential Dynamic Microscopy of Bacterial Motility
- Correcting artifacts from finite image size in Differential Dynamic Microscopy
- Dark Field Differential Dynamic Microscopy enables the accurate characterization of the roto-translational dynamics of bacteria and colloidal clusters
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