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Hybrid Self-Healing Matrix Using Core-Shell Nanofibers and Capsuleless Microdroplets

Authors
Lee, Min WookAn, SeongpilLee, ChangminLiou, MinhoYarin, Alexander L.Yoon, Sam S.
Issue Date
9-7월-2014
Publisher
AMER CHEMICAL SOC
Keywords
self-healing; core-shell nanofibers; electrospinning; emulsions
Citation
ACS APPLIED MATERIALS & INTERFACES, v.6, no.13, pp.10461 - 10468
Indexed
SCIE
SCOPUS
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
6
Number
13
Start Page
10461
End Page
10468
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/97972
DOI
10.1021/am5020293
ISSN
1944-8244
Abstract
In this work, we developed novel self-healing anticorrosive hierarchical coatings that consist of several components. Namely, as a skeleton we prepared a core-shell nanofiber mat electrospun from emulsions of cure material (dimethyl methylhydrogen siloxane) in a poly(acrylonitrile) (PAN) solution in dimethylformamide. In these nanofibers, cure is in the core, while PAN is in the shell. The skeleton deposited on a protected surface is encased in an epoxy-based matrix, which contains emulsified liquid droplets of dimethylvinyl-terminated dimethylsiloxane resin monomer. When such hierarchical coatings are damaged, cure is released from the nanofiber cores and the resin monomer, released from the damaged matrix, is polymerized in the presence of cure. This polymerization and solidification process takes about 1-2 days and eventually heals the damaged material when solid poly(dimethylsiloxane) resin is formed. The self-healing effect was demonstrated using an electrochemical analogue of the scanning vibrating electrode technique. Damaged samples were left for 2 days. After that, the electric current through a damaged coating was found to be negligibly small for the samples with self-healing properties. On the other hand, for the samples without self-healing properties, the electric current was significant.
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