Friction Behavior and Microscopic Mechanism of Hydrogels in an Open‐Air Environment
Abstract
Abstract Hydrogels composed of a solvent‐saturated, cross‐linked polymer network exhibit unique interfacial rheology and ultralow friction, making them valuable in biomedical applications. Despite their widespread use in open‐air environments, the lubrication behaviors of hydrogels under these conditions remain poorly understood. Here, the microscopic mechanisms underlying the friction characteristics of hydrogels through a combination of experiments, theoretical analyses, and molecular dynamics simulations is explored. It is found that water evaporation from the hydrogel surface reduces the hydrodynamic layer thickness and increases surface viscosity, leading to a gradual rise in friction. On the other hand, optimizing pore size and water mobility within the hydrogel enhances water transport from the interior to the surface, mitigating evaporation and enabling consistently low friction. It is also explored how soaking time, water affinity, and applied normal load influence hydrogel lubrication. The findings elucidate the microscopic mechanisms governing the friction behaviors of hydrogels and provide guidelines for designing hydrogel systems with sustained exceptional lubrication properties in open‐air applications.
Article Details
Authors (6)
Wenbo Zhu
Institute of Advanced Biotechnology, Institute of Homeostatic Medicine, and School of Medicine, Southern University of Science and Technology
Jiaqi Li
Feng Du
Nannan Jian
School of Aerospace Engineering Beijing Institute of Technology Beijing 100081 P. R. China
Jiuling Wang
Laboratory of Theoretical and Computational Nanoscience, National Center for Nanoscience and Technology Chinese Academy of Sciences Beijing 100190 China
Kai Zhang