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Stimulus-Responsive Shrinkage in Electrospun Membranes: Fundamentals and Control

Authors :
Feiyu Fang
Han Wang
Huaquan Wang
Wei Min Huang
Yahui Chen
Nian Cai
Xindu Chen
Xin Chen
Source :
Micromachines, Vol 12, Iss 8, p 920 (2021)
Publication Year :
2021
Publisher :
MDPI AG, 2021.

Abstract

Shrinkage is observed in many electrospun membranes. The stretched conformation of the macromolecular chains has been proposed as the possible cause. However, so far, our understanding of the fundamentals is still qualitative and cannot provide much help in the shrinkage control. In this paper, based on the crimped fibers after stimulus-induced shrinkage, a clear evidence of buckling, the gradient pre-strain field in the cross-section of the electrospun fibers, which is the result of a gradient solidification field and a tensile force in the fibers during electrospinning, is identified as the underlying mechanism for the stimulus-induced shrinkage. Subsequently, two buckling conditions are derived. Subsequently, a series of experiments are carried out to reveal the influence of four typical processing parameters (namely, the applied voltage, solution concentration, distance between electrodes, and rotation speed of collector), which are highly relevant to the formation of the gradient pre-strain field. It is concluded that there are some different ways to achieve the required shrinkage ratios in two in-plane directions (i.e., the rotational and transverse directions of the roller collector). Some of the combinations of these parameters are more effective at achieving high uniformity than others. Hence, it is possible to optimize the processing parameters to produce high-quality membranes with well-controlled shrinkage in both in-plane directions.

Details

Language :
English
ISSN :
2072666X
Volume :
12
Issue :
8
Database :
Directory of Open Access Journals
Journal :
Micromachines
Publication Type :
Academic Journal
Accession number :
edsdoj.49971853d4f44e588027dd6daea9b54f
Document Type :
article
Full Text :
https://doi.org/10.3390/mi12080920