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A highly sensitive, superhydrophobic fabric strain sensor based on polydopamine template-assisted synergetic conductive network
[Display omitted] •The NPMAPS strain sensor possesses broad sensing range and high sensitivity.•The NPMAPS strain sensor presents excellent superhydrophobicity.•The NPMAPS strain sensor can detect small vibrations underwater and joint motions in harsh environments.•The NPMAPS displays an outstanding...
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Published in: | Applied surface science 2023-04, Vol.617, p.156535, Article 156535 |
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Main Authors: | , , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | [Display omitted]
•The NPMAPS strain sensor possesses broad sensing range and high sensitivity.•The NPMAPS strain sensor presents excellent superhydrophobicity.•The NPMAPS strain sensor can detect small vibrations underwater and joint motions in harsh environments.•The NPMAPS displays an outstanding electrothermal temperature.
It is an enormous challenge to develop fabric sensors with wide sensing range, high sensitivity and stable sensing performance that can be employed to work in harsh conditions. Here, a superhydrophobic fabric strain sensor is successfully developed via constructing synergetic conductive networks (MWNTs (multi-walled carbon nanotubes) and AgNPs (silver nanoparticles) on polydopamine (PDA) layer wrapped fibers, followed by polydimethylsiloxane (PDMS) coating. The synergetic conductive MWNTs/AgNPs networks render NWF/PDA/MWNTs/AgNPs/PDMS (NPMAPS) strain sensor a wide sensing range of 120 % strain, high GF up to 527.1, minimum detection limit of 0.1 %, fast response time of 50 ms, and favourable sensing stability during stretching-releasing of 4000 cycles. PDMS with low surface energy combines with rough surface provided by MWNTs and AgNPs, which grants NPMAPS strain sensor satisfying superhydrophobicity (WCA = 156°), self-cleaning ability and anti-corrosive resistance. Due to the high sensitivity and remarkable superhydrophobicity, the NPMAPS strain sensor can be utilized to detect small vibrations underwater (ultrasonic vibration and percussion) and joint motions even in humid or harsh environments. In addition, NPMAPS possesses low resistance of 1.55 Ω cm−1, and thus exhibits a prominent electrothermal temperature (91.3 °C at 2.0 V). These significant performances demonstrate that the superhydrophobic NPMAPS is promising as waterproof wearable electronics. |
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ISSN: | 0169-4332 1873-5584 |
DOI: | 10.1016/j.apsusc.2023.156535 |