How are mobility and friction related in viscoelastic fluids?

2023 | journal article. A publication with affiliation to the University of Göttingen.

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​How are mobility and friction related in viscoelastic fluids?​
Caspers, J.; Ditz, N.; Krishna Kumar, K.; Ginot, F.; Bechinger, C.; Fuchs, M. & Krüger, M.​ (2023) 
The Journal of Chemical Physics158(2) art. 024901​.​ DOI: https://doi.org/10.1063/5.0129639 

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Authors
Caspers, Juliana; Ditz, Nikolas; Krishna Kumar, Karthika; Ginot, Félix; Bechinger, Clemens; Fuchs, Matthias; Krüger, Matthias
Abstract
The motion of a colloidal probe in a viscoelastic fluid is described by friction or mobility, depending on whether the probe is moving with a velocity or feeling a force. While the Einstein relation describes an inverse relationship valid for Newtonian solvents, both concepts are generalized to time-dependent memory kernels in viscoelastic fluids. We theoretically and experimentally investigate their relation by considering two observables: the recoil after releasing a probe that was moved through the fluid and the equilibrium mean squared displacement (MSD). Applying concepts of linear response theory, we generalize Einstein’s relation and, thereby, relate recoil and MSD, which both provide access to the mobility kernel. With increasing concentration, however, MSD and recoil show distinct behaviors, rooted in different behaviors of the two kernels. Using two theoretical models, a linear two-bath particle model, and hard spheres treated by mode coupling theory, we find a Volterra relation between the two kernels, explaining differing timescales in friction and mobility kernels under variation of concentration.
Issue Date
2023
Journal
The Journal of Chemical Physics 
ISSN
0021-9606
eISSN
1089-7690
Language
English
Sponsor
Deutsche Forschungsgemeinschaft http://dx.doi.org/10.13039/501100001659
Alexander von Humboldt-Stiftung http://dx.doi.org/10.13039/100005156

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