Dynamics and Rheology of Ring-Linear Blend Semidilute Solutions in Extensional Flow: Single Molecule Experiments
Yuecheng Zhou, Charles D. Young, Kathryn E. Regan, Megan Lee, Sourya, Banik, Dejie Kong, Gregory B. McKenna, Rae M. Robertson-Anderson, Charles E., Sing, Charles M. Schroeder

TL;DR
This study uses single molecule experiments to explore the complex flow behavior of DNA ring polymers in semidilute ring-linear blends, revealing non-monotonic fluctuation responses and the influence of intermolecular interactions on dynamics.
Contribution
It provides new insights into the nonequilibrium flow behavior of ring polymers in blends, highlighting molecular individualism and the role of threading and hydrodynamic interactions.
Findings
Multiple molecular sub-populations for ring relaxation.
Large conformational fluctuations in steady flow.
Non-monotonic fluctuation magnitude with ring fraction.
Abstract
Ring polymers exhibit unique flow properties due to their closed chain topology. Despite recent progress, we have not yet achieved a full understanding of the nonequilibrium flow behavior of rings in nondilute solutions where intermolecular interactions greatly influence chain dynamics. In this work, we directly observe the dynamics of DNA rings in semidilute ring-linear polymer blends using single molecule techniques. We systematically investigate ring polymer relaxation dynamics from high extension and transient and steady-state stretching dynamics in planar extensional flow for a series of ring-linear blends with varying ring fraction. Our results show multiple molecular sub-populations for ring relaxation in ring-linear blends, as well as large conformational fluctuations for rings in steady extensional flow, even long after the initial transient stretching process has subsided. We…
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