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In Situ Growth of Nanosilver on Fabric for Flexible Stretchable Electrodes.
Liao, Qingwei; Yin, Yuxiang; Zhang, Jingxin; Si, Wei; Hou, Wei; Qin, Lei.
Afiliação
  • Liao Q; Key Laboratory of Sensors, Beijing Information Science and Technology University, Beijing 100192, China.
  • Yin Y; School of Instrument Science and Opto-Electronics Engineering, Beijing Information Science and Technology University, Beijing 100192, China.
  • Zhang J; Key Laboratory of Modern Measurement and Control Technology, Ministry of Education, Beijing Information Science and Technology University, Beijing 100192, China.
  • Si W; Key Laboratory of Photoelectric Testing Technology, Beijing Information Science and Technology University, Beijing 100192, China.
  • Hou W; School of Instrument Science and Opto-Electronics Engineering, Beijing Information Science and Technology University, Beijing 100192, China.
  • Qin L; Key Laboratory of Sensors, Beijing Information Science and Technology University, Beijing 100192, China.
Int J Mol Sci ; 23(21)2022 Oct 31.
Article em En | MEDLINE | ID: mdl-36362024
ABSTRACT
Flexible sensing can disruptively change the physical form of traditional electronic devices to achieve flexibility in information acquisition, processing, transmission, display, and even energy, and it is a core technology for a new generation of the industrial internet. Fabric is naturally flexible and stretchable, and its knitted ability makes it flexibility and stretchability even more adjustable. However, fabric needs to be electrically conductive to be used for flexible sensing, which allows it to carry a variety of circuits. The dip-coating technique is a common method for preparing conductive fabrics, which are made conductive by attaching conductive fillers to the fabrics. However, the adhesion of the conductive fillers on the surface of such conductive fabrics is weak, and the conductive property will decay rapidly because the conductive filler falls off after repeated stretching, limiting the lifespan of flexible electronic devices based on conductive fabric. We chose multifunctional nanosilver as a conductive filler, and we increased the adhesion of nanosilver to fabric fiber by making nanosilver grow in situ and cover the fiber, so as to obtain conductive fabric with good conductivity. This conductive fabric has a minimum square resistance of 9 Ω/sq and has better electrical conductivity and more stable electrical properties than the conductive fabric prepared using the dip-coating process, and its square resistance did not increase significantlyafter 60 stretches.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Têxteis / Eletrônica Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Têxteis / Eletrônica Idioma: En Ano de publicação: 2022 Tipo de documento: Article