Analytical data belonging to the publication "in-situ study of the impact of temperature and architecture on the interfacial structure of thermo-responsive microgels"

Abstract: The structural characterization of microgels at interfaces is fundamental to understand both their 2D phase behavior and their role as stabilizers that enable emulsions to be broken on demand. However, this characterization is usually limited by available experimental techniques, which do not allow a direct investigation at interfaces. To overcome this difficulty, here we employ neutron reflectometry, which allows us to probe the structure and responsiveness of the microgels in-situ at the air-water interface. We investigate two types of microgels with different cross-link density, thus having different softness and deformability, both below and above their volume phase transition temperature, combining experiments with computer simulations of realistic in silico synthesized microgels. We find that temperature only affects the portion of microgels in water, while the strongest effect of the microgels softness is observed in their ability to protrude into the air. In particular, standard microgels have an apparent contact angle of few degrees, while ultra-low cross-linked microgels form a flat polymeric layer with zero contact angle. Altogether, this study provides an in-depth microscopic description of how different microgel architectures affect their arrangements at interfaces, and will be the foundation for a better understanding of their phase behavior and assembly. Method: Neutron Reflectivity

Cite this as

Scotti, Andrea, Bochenek, Steffen (2022). Dataset: Analytical data belonging to the publication "in-situ study of the impact of temperature and architecture on the interfacial structure of thermo-responsive microgels". https://doi.org/10.22000/603

DOI retrieved: 2022

Additional Info

Field Value
Imported on January 12, 2023
Last update August 4, 2023
License CC BY 4.0 Attribution
Source https://doi.org/10.22000/603
Author Scotti, Andrea
More Authors
Bochenek, Steffen
Source Creation 2022
Publishers
IPC - RWTH Aachen University
Production Year 2018-2021
Publication Year 2022
Subject Areas
Name: Physics

Related Identifiers
Identifier: 21.11102/b0e200f4-d196-44bd-874a-2f5f79d22527
Type: Handle
Relation: IsIdenticalTo

Identifier: 10.1038/s41467-022-31209-3
Type: DOI
Relation: IsSupplementTo