4.7 Article

Macromolecularly Engineered Thermoreversible Heterogeneous Self-Healable Networks Encapsulating Reactive Multidentate Block Copolymer-Stabilized Carbon Nanotubes

期刊

MACROMOLECULAR RAPID COMMUNICATIONS
卷 42, 期 12, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/marc.202000514

关键词

carbon nanotubes; conductivity; Diels‐ Alder reaction; macromolecular engineering; polyurethane; self‐ healing; thermoreversibility

资金

  1. Natural Science and Engineering Research Council (NSERC) in Canada [RGPIN/4989-2016, RGPIN-2018-05092, RGPIN-2020-05546]
  2. Canada Research Chair (CRC) Award [950-231058]
  3. Fonds de recherche du Quebec-Nature et technologies (FRQNT) [2020-NC-271447]

向作者/读者索取更多资源

The research explores the development of heterogeneous covalent adaptable networks embedded with carbon nanotubes by utilizing a macromolecular engineering approach through thermoreversibility, resulting in robust polyurethane networks with self-healing elasticity and enhanced conductivity.
The development of heterogeneous covalent adaptable networks (CANs) embedded with carbon nanotubes (CNTs) that undergo reversible dissociation/recombination through thermoreversibility has been significantly explored. However, the carbon nanotube (CNT)-incorporation methods based on physical mixing and chemical modification could result in either phase separation due to structural incompatibility or degrading conjugation due to a disruption of pi-network, thus lowering their intrinsic charge transport properties. To address this issue, the versatility of a macromolecular engineering approach through thermoreversibility by physical modification of CNT surfaces with reactive multidentate block copolymers (rMDBCs) is demonstrated. The formed CNTs stabilized with rMDBCs (termed rMDBC/CNT colloids) bearing reactive furfuryl groups is functioned as a multicrosslinker that reacts with a polymaleimide to fabricate robust heterogeneous polyurethane (PU) networks crosslinked through dynamic Diels-Alder (DA)/retro-DA chemistry. Promisingly, the fabricated PU network gels in which CNTs through rMDBC covalently embedded are flexible and robust to be bendable as well as exhibit self-healing elasticity and enhanced conductivity.

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