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Photo-patternable, stretchable and electrically conductive graft copolymers of poly(3-hexylthiophene)

Year: 2019

Journal: Polym. Chem., Volume 10, DEC 14, page 6278–6289

Authors: Wang, Min; Kee, Seyoung; Baek, Paul; Ting, Matthew S.; Zujovic, Zoran; Barker, David; Travas-Sejdic, Jadranka

Organizations: Marsden FundRoyal Society of New ZealandMarsden Fund (NZ) [UoA1522]; University of Auckland; MacDiarmid Institute for Advanced Materials and Nanotechnology

With the increasing demand for new human-device interfaces, the research interest in electronics applications has shifted towards wearable and implantable miniature medical/biomedical devices. These frontier applications require not only such devices to be soft and deformable for conformal contact with the human body, and even tissues, but also the component electronic materials to be easily processable and patternable for simple device fabrication. Although pi-conjugated polymers (CPs) have emerged as a promising material class for such applications, their mechanical brittleness and limited patternability have been significant drawbacks. Herein, we developed a novel CP with desired multifunctional features by grafting soft poly(ethylene glycol)methyl ether methacrylate (PEGMMA) side chains with a small amount of photo-crosslinkable glycidyl methacrylate (GMA) side chains on to a conductive poly(3-hexylthiophene) (P3HT) backbone. By incorporating poly(PEGMMA-co-GMA) segments, the graft copolymer exhibits excellent mechanical stretchability, up to 150% strain, as well as water-swellability, while maintaining doping/dedoping capability and thus sufficient electrical conductivity originating from conjugated P3HT segments. Moreover, the introduction of epoxy-bearing GMA segments allows us to demonstrate the micro-patterning of graft copolymer films through the photo-crosslinking process. This work provides a simple and facile methodology to prepare multifunctional stretchable, photo-patternable and electrically conductive polymers for versatile organic electronics and bioelectronics.