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Environmentally stable and stretchable polymer electronics enabled by surface-tethered nanostructured molecular-level protection

Authors :
Zheng, Yu
Michalek, Lukas
Liu, Qianhe
Wu, Yilei
Kim, Hyunjun
Sayavong, Philaphon
Yu, Weilai
Zhong, Donglai
Zhao, Chuanzhen
Yu, Zhiao
Chiong, Jerika A.
Gong, Huaxin
Ji, Xiaozhou
Liu, Deyu
Zhang, Song
Prine, Nathaniel
Zhang, Zhitao
Wang, Weichen
Tok, Jeffrey B.-H.
Gu, Xiaodan
Cui, Yi
Kang, Jiheong
Bao, Zhenan
Source :
Nature Nanotechnology; 20230101, Issue: Preprints p1-10, 10p
Publication Year :
2023

Abstract

Stretchable polymer semiconductors (PSCs) are essential for soft stretchable electronics. However, their environmental stability remains a longstanding concern. Here we report a surface-tethered stretchable molecular protecting layer to realize stretchable polymer electronics that are stable in direct contact with physiological fluids, containing water, ions and biofluids. This is achieved through the covalent functionalization of fluoroalkyl chains onto a stretchable PSC film surface to form densely packed nanostructures. The nanostructured fluorinated molecular protection layer (FMPL) improves the PSC operational stability over an extended period of 82 days and maintains its protection under mechanical deformation. We attribute the ability of FMPL to block water absorption and diffusion to its hydrophobicity and high fluorination surface density. The protection effect of the FMPL (~6 nm thickness) outperforms various micrometre-thick stretchable polymer encapsulants, leading to a stable PSC charge carrier mobility of ~1 cm2V−1s−1in harsh environments such as in 85–90%-humidity air for 56 days or in water or artificial sweat for 42 days (as a benchmark, the unprotected PSC mobility degraded to 10−6cm2V−1s−1in the same period). The FMPL also improved the PSC stability against photo-oxidative degradation in air. Overall, we believe that our surface tethering of the nanostructured FMPL is a promising approach to achieve highly environmentally stable and stretchable polymer electronics.

Details

Language :
English
ISSN :
17483387 and 17483395
Issue :
Preprints
Database :
Supplemental Index
Journal :
Nature Nanotechnology
Publication Type :
Periodical
Accession number :
ejs63331133
Full Text :
https://doi.org/10.1038/s41565-023-01418-y