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Extremely stretchable and conductive waterrepellent coatings for low-cost ultra-flexible electronics

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posted on 2016-05-11, 00:00 authored by JE Mates, IS Bayer, JM Palumbo, PJ Carroll, Constantine M. Megaridis
Rapid advances in modern electronics place ever-accelerating demands on innovation towards more robust and versatile functional components. In the flexible electronics domain, novel material solutions often involve creative uses of common materials to reduce cost, while maintaining uncompromised performance. Here we combine a commercially available paraffin wax–polyolefin thermoplastic blend (elastomer matrix binder) with bulk-produced carbon nanofibres (charge percolation network for electron transport, and for imparting nanoscale roughness) to fabricate adherent thin-film composite electrodes. The simple wet-based process produces composite films capable of sustained ultra-high strain (500%) with resilient electrical performance (resistances of the order of 101 –102 O sq 1). The composites are also designed to be superhydrophobic for long-term corrosion protection, even maintaining extreme liquid repellency at severe strain. Comprised of inexpensive common materials applied in a single step, the present scalable approach eliminates manufacturing obstacles for commercially viable wearable electronics, flexible power storage devices and corrosion-resistant circuits.

Funding

This material is based upon work supported in part by the US National Science Foundation under grant CBET-1066426. The custom stretching fixtures and SEM stubs were constructed by the UIC instrument shop, and all SEM measurements were made at the UIC Research Resources Center. The Research Open Access Publishing (ROAAP) Fund of the University of Illinois at Chicago provided financial support towards the open access publishing fee for this article.

History

Publisher Statement

This is a copy of an article published in Nature Communications © 2015 Nature Publishing Group.

Publisher

Nature Publishing Group

issn

2041-1723

Issue date

2015-11-01

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