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Microwave-Assisted Synthesis of Stretchable and Transparent Poly(Ethyleneglycol-Sebacate) Elastomers with Autonomous Self-Healing and Capacitive Properties
Author(s) -
Gülçin Günal,
Meltem Okan,
Dinçer Gökcen,
Tuncer Çaykara,
Halil Murat Aydın
Publication year - 2020
Publication title -
soft robotics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.998
H-Index - 40
eISSN - 2169-5180
pISSN - 2169-5172
DOI - 10.1089/soro.2019.0148
Subject(s) - materials science , elastomer , ethylene glycol , self healing , nanotechnology , self healing hydrogels , biocompatible material , composite material , biomedical engineering , organic chemistry , polymer chemistry , chemistry , medicine , alternative medicine , pathology
Introducing functional synthetic biomaterials to the literature became quite essential in biomedical technologies. For the growth of novel biomedical engineering approaches, progressive functional properties as well as the robustness of the manufacturing processes are essential. By using acid-induced epoxide ring-opening polymerizations through catalysts, a wide variety of biodegradable and functionalized biomaterials can be synthesized. Sebacic acid (SA) and poly(ethylene glycol) diglycidyl ether (PEGDGE) are amongst the FDA-approved biocompatible materials. In this study, we focused on the rapid synthesis of caffeine-catalyzed self-healable elastomer via a facile microwave-assisted synthesis route. The elastomer prepared can be used in various applications, including tactile sensors, wearable electronics, and soft robotics. SA and PEGDGE were catalyzed in the presence of caffeine under microwave irradiation followed by crosslinking in vacuo , yielding an elastomeric material. The chemical characterizations of the obtained elastomer were carried out. The resulting material is transparent, highly stretchable, and has capacitive and self-healing properties even at room temperature. The material developed can be easily applied for the aforementioned applications.

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