| Literature DB >> 31830359 |
Seokmin Lee1, Yongkwon Song1, Yongmin Ko1, Younji Ko1, Jongkuk Ko1, Cheong Hoon Kwon1, June Huh1, Sang-Woo Kim2, Bongjun Yeom3, Jinhan Cho1.
Abstract
For the development of wearable electronics, the replacement of rigid, metallic components with fully elastomeric materials is crucial. However, current elastomeric electrodes suffer from low electrical conductivity and poor electrical stability. Herein, a metal-like conductive elastomer with exceptional electrical performance and stability is presented, which is used to fabricate fully elastomeric electronics. The key feature of this material is its wrinkled structure, which is induced by in situ cooperation of solvent swelling and densely packed nanoparticle assembly. Specifically, layer-by-layer assembly of metal nanoparticles and small-molecule linkers on elastomers generates the hierarchical wrinkled elastomer. The elastomer demonstrates remarkable electrical conductivity (170 000 and 11 000 S cm-1 at 0% and 100% strain, respectively), outperforming previously reported elastomeric electrodes based on nanomaterials. Furthermore, a fully elastomeric triboelectric nanogenerator based on wrinkled elastomeric electrode exhibits excellent electric power generation performance due to the compressible, large contact area of the wrinkled surface during periodic contact and separation.Entities:
Keywords: elastomeric electrodes; metal nanoparticles; multilayers; swelling; wrinkled structures
Year: 2019 PMID: 31830359 DOI: 10.1002/adma.201906460
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849