Hydrodynamic inflation of ring polymers under shear

Author(s)
Maximilian Liebetreu, Christos N. Likos
Abstract

Hydrodynamic interactions can dramatically influence the dynamics of fully flexible, ring-shaped polymers in ways unknown for any other polymer architecture or topology. Tumbling under shear is a common dynamic pattern of motion for all polymer architectures. Here we show the existence of a shear-induced inflation phase exclusive to ring polymers, the onset of which depends on the ring’s contour length. This is accompanied by a strong suppression of tumbling, which resumes at even higher shear rates. The ring swells in the vorticity direction, and the horseshoe regions on the stretched and swollen ring are effectively locked in place relative to its center-of-mass. Furthermore, knots tied onto such rings can serve as additional ‘stabilisation anchors'. Under strong shear, the knotted section remains well-localised while tank-treading from one horseshoe region to the other in sudden bursts. We find knotted polymers of high contour length behave very similarly to unknotted rings of the same contour length.

Organisation(s)
Computational and Soft Matter Physics
Journal
Communications Materials
Volume
1
No. of pages
11
ISSN
2662-4443
DOI
https://doi.org/10.1038/s43246-019-0006-5
Publication date
02-2020
Peer reviewed
Yes
Austrian Fields of Science 2012
103023 Polymer physics, 103029 Statistical physics
Keywords
ASJC Scopus subject areas
Mechanics of Materials, General Materials Science
Portal url
https://ucrisportal.univie.ac.at/en/publications/8f487127-ee54-4e63-a88d-c3ef58541330