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Cited 9 time in webofscience Cited 9 time in scopus
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Highly sensitive and flexible micro-patterned PPy/PDMS strain sensors with enhanced conductivity and stretchability for wearable electronics

Authors
Muhammad, WaqarKim, Sam-Dong
Issue Date
Aug-2024
Publisher
Elsevier BV
Keywords
Flexible Electronics; Microchannels; Micromachining; Polypyrroles; Silicones; Surface Treatment; Wearable Sensors; X Ray Photoelectron Spectroscopy; Enhanced Conductivity; Lift Offs; Micro Pattern; Micropatterned; Oxidative Polymerization; Performance; Polymerization Process; Polypyrrole Film; Sodium Dodecylbenzenesulfonate; Strain Sensors; Polydimethylsiloxane
Citation
Polymer, v.308, pp 1 - 18
Pages
18
Indexed
SCIE
SCOPUS
Journal Title
Polymer
Volume
308
Start Page
1
End Page
18
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/22433
DOI
10.1016/j.polymer.2024.127356
ISSN
0032-3861
1873-2291
Abstract
This study presents a pioneering approach to enhance the performance of flexible strain sensors based on polypyrrole (PPy) by incorporating micro-patterns onto polydimethylsiloxane (PDMS) substrates. Micro-patterned PPy films were generated through image-reversal photolithography and pattern lift-off followed by a straightforward chemical oxidative polymerization process to deposit the films. A method of surface treatment using the dopant sodium dodecylbenzenesulfonate (SDBS) was also used to enhance the conductivity of the degraded PPy films after the formation of patterns. We conducted a systematic exploration of various fabrication conditions, including unpatterned and three micro-patterned variants. Utilizing X-ray photoelectron spectroscopy analyses, we investigated the interplay between SDBS treatment, structural modifications, and strain sensor performance. Our results unveiled that micro-patterned sensors treated with SDBS and capped by PDMS layer showed remarkable performance attributes. The sensors fabricated by this method exhibited a gauge factor of 35 at 100 % strain, coupled with a very fast response time of similar to 2.8 ms under quasi-step function strain ranging from 0 to 1 % in 1.8 ms, demonstrating excellent durability across 500 stretching/release cycles. This study provides invaluable insights into enhancing the effectiveness of micro-patterned PPy/PDMS strain sensors, opening avenues for their widespread utilization in wearable electronics.
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