Multi‐Functional and Flexible Nano‐Silver@MXene Heterostructure‐Decorated Graphite Felt for Wearable Thermal Therapy
Wearable heaters with multifunctional performances are urgently required for the future personal health management. However, it is still challengeable to fabricate multifunctional wearable heaters simultaneously with flexibility, air‐permeability, Joule heating performance, electromagnetic shielding...
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Veröffentlicht in: | Small (Weinheim an der Bergstrasse, Germany) Germany), 2024-08, Vol.20 (31), p.e2310191-n/a |
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Sprache: | eng |
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Zusammenfassung: | Wearable heaters with multifunctional performances are urgently required for the future personal health management. However, it is still challengeable to fabricate multifunctional wearable heaters simultaneously with flexibility, air‐permeability, Joule heating performance, electromagnetic shielding property, and anti‐bacterial ability. Herein, silver nanoparticles (AgNPs)@MXene heterostructure‐decorated graphite felts are fabricated by introducing MXene nanosheets onto the graphite felts via a simple dip‐coating method and followed by a facile in situ growth approach to grow AgNPs on MXene layers. The obtained AgNPs@MXene heterostructure decorated graphite felts not only maintain the intrinsic flexibility, air‐permeability and comfort characteristics of the matrixes, but also present excellent Joule heating performance including wide temperature range (30–128 °C), safe operating conditions (0.9–2.7 V), and rapid thermal response (reaching 128 °C within 100 s at 2.7 V). Besides, the multifunctional graphite felts exhibit excellent electromagnetic shielding effectiveness (53 dB) and outstanding anti‐bacterial performances (>95% anti‐bacterial rate toward Bacillus subtilis, Escherichia coli and Staphy‐lococcus aureus). This work sheds light on a novel avenue to fabricate multifunctional wearable heaters for personal healthcare and personal thermal management.
In this work, a multi‐functional and flexible AgNPs@MXene heterostructure‐decorated graphite felt for wearable thermal therapy is prepared. The resultant film exhibits remarkable Joule heating performance (reaching 128 °C within 100 s at 2.7 V), superior electromagnetic interference (EMI) shielding effectiveness (53 dB), and exceptional antibacterial activity (>95% anti‐bacterial rate toward Bacillus subtilis, Escherichia coli, and Staphy‐lococcus aureus). |
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ISSN: | 1613-6810 1613-6829 1613-6829 |
DOI: | 10.1002/smll.202310191 |