4.7 Article

Biobased dual-cure thiol-ene benzoxazine resins for high-performance polymer dielectrics

期刊

MATERIALS & DESIGN
卷 224, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.matdes.2022.111359

关键词

Benzoxazine; Thiol-ene chemistry; Polymer dielectrics; Energy storage density; Charge -discharge efficiency

资金

  1. Nanyang Technological University
  2. Nanyang Technological University (NTU) [04IDS000677N040]
  3. School of Materials Science and Engineering NTU

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In this study, two magnolol-based polymers were designed and synthesized for high-performance polymer dielectrics. The polymers showed excellent thermal, mechanical, and dielectric properties, making them promising materials for energy storage.
In the present study, two magnolol based main chain benzoxazine polymers (MCBPs) are designed, synthesized and formulated into thiol-ene resins to develop high-performance polymer dielectrics. Initially, the thiol-ene thermoset films, Mag-M-4SH-80 and Mag-E-4SH-80, are obtained respectively using click chemistry. Being post cured via progressive temperature stage, Mag-M/E-4SH-80 performs complete ring opening polymerization and forms dual-cure polybenzoxazine (PBZ) products with excellent thermal and mechanical performances such as a high Tg of 236 degrees C and a flexure modulus of 2.5 GPa. Moreover, the thiol component of the resin introduces numerous dipoles to the resultant polymer networks, resulting in promising dielectric performances of the resin at both room temperature and elevated temperature. For instance, the Mag-M-4SH-80 film demonstrates a superior energy density (Ue) of 7.0 J/cm3@25 degrees C, which is among the top reported dielectric thermosets having same efficiency, and Mag-M-4SH-150 film reveals a Ue of 1.1 J/cm3@150 degrees C, significantly higher than the reported values of a great number of commercial heat resistant polymers. Herein, our findings not only expand the library of high-performance thiol-ene benzoxazine resins but also present their potentials as flexible dielectrics for energy storage for the first time, thus advance the functionality and capability of benzoxazine based materials in modern electronics.(c) 2022 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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