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Polyvinyl alcohol/chitosan based nanocomposite organohydrogel flexible wearable strain sensors for sports monitoring and underwater communication rescue.
Li, Zhenchun; Liu, Peng; Chen, Shaowei; Wang, Bingzhen; Liu, Shiyuan; Cui, Enyuan; Li, Feihong; Yu, Yunwu; Pan, Wenhao; Tang, Ning; Gu, Yaxin.
Afiliación
  • Li Z; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Liu P; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China. Electronic address: liupeng6955@126.com.
  • Chen S; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Wang B; College of Guangxi, Guangxi University, Nanning, Guangxi 530000, China.
  • Liu S; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Cui E; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Li F; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Yu Y; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Pan W; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Tang N; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
  • Gu Y; School of Materials Science and Engineering, Shenyang Jianzhu University, Shenyang 110168, China.
Int J Biol Macromol ; 258(Pt 2): 129054, 2024 Feb.
Article en En | MEDLINE | ID: mdl-38159708
ABSTRACT
Hydrogel-based flexible wearable sensors have garnered significant attention in recent years. However, the use of hydrogel, a biomaterial known for its high toughness, environmental friendliness, and frost resistance, poses a considerable challenge. In this study, we propose a stepwise construction and multiple non-covalent interaction matching strategy to successfully prepare dynamically physically crosslinked multifunctional conductive hydrogels. These hydrogels self-assembled to form a rigid crosslinked network through intermolecular hydrogen bonding and metal ion coordination chelation. Furthermore, the freeze-thawing process promoted the formation of poly(vinyl alcohol) microcrystalline domains within the amorphous hydrogel network system, resulting in exceptional mechanical properties, including a tensile strength (2.09 ± 0.01 MPa) and elongation at break of 562 ± 12 %. It can lift 10,000 times its own weight. Additionally, these hydrogels exhibit excellent resistance to swelling and maintain good toughness even at temperatures as low as -60 °C. As a wearable strain sensor with remarkable sensing ability (GF = 1.46), it can be effectively utilized in water and underwater environments. Moreover, it demonstrates excellent antimicrobial properties against Escherichia coli (Gram-negative bacteria). Leveraging its impressive sensing ability, we combine signal recognition with a deep learning model by incorporating Morse code for encryption and decryption, enabling information transmission.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Contexto en salud: 3_ND Problema de salud: 3_neglected_diseases / 3_zoonosis Asunto principal: Quitosano / Dispositivos Electrónicos Vestibles Idioma: En Revista: Int J Biol Macromol Año: 2024 Tipo del documento: Article País de afiliación: China

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Contexto en salud: 3_ND Problema de salud: 3_neglected_diseases / 3_zoonosis Asunto principal: Quitosano / Dispositivos Electrónicos Vestibles Idioma: En Revista: Int J Biol Macromol Año: 2024 Tipo del documento: Article País de afiliación: China
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