首站-论文投稿智能助手
典型文献
Water-Resistant and Stretchable Conductive Ionic Hydrogel Fibers Reinforced by Carboxymethyl Cellulose
文献摘要:
Conductive ionic hydrogels(CIH)have been widely studied for the development of stretchable electronic devices,such as sensors,electrodes,and actuators.Most of these CIH are made into 3D or 2D shape,while 1D CIH(hydrogel fibers)is often difficult to make because of the low mechanical robustness of,common CIH.Herein,we use gel spinning method to prepare a robust CIH fiber with high strength,large stretchability,and good conductivity.The robust CIH fiber is drawn from the composite gel of sodium polyacrylate(PAAS)and sodium carboxymethyl cel-lulose(CMC).In the composite CIH fiber,the soft PAAS presents good conductivity and stretchability,while the rigid CMC significantly enhances the strength and toughness of the PAAS/CMC fiber.To protect the conductive PAAS/CMC fiber from damage by wa-ter,a thin layer of hydrophobic polymethyl acrylate(PMA)or polybutyl acrylate(PBA)is coated on the PAAS/CMC fiber as a water-resistant and insulating cover.The obtained PAAS/CMC-PMA and PAAS/CMC-PBA CIH fibers present high tensile strength(up to 28 MPa),high tensile toughness(up to 43 MJ/m3),and good electrical conductivity(up to 0.35 S/m),which are useful for textile-based stretchable electronic devices.
文献关键词:
作者姓名:
Zhen Wang;Mei Wang;Ming-ming Ma;Ning Zhang
作者机构:
School of Biology,Food and Environment,Hefei University,Hefei 230022,China;Hefei National Laboratory for Physical Sciences at the Microscale,Department of Chemistry,University of Science and Technology of China,Hefei 230026,China
引用格式:
[1]Zhen Wang;Mei Wang;Ming-ming Ma;Ning Zhang-.Water-Resistant and Stretchable Conductive Ionic Hydrogel Fibers Reinforced by Carboxymethyl Cellulose)[J].化学物理学报(英文版),2022(05):835-841
A类:
polybutyl
B类:
Water,Resistant,Stretchable,Conductive,Ionic,Hydrogel,Fibers,Reinforced,by,Carboxymethyl,Cellulose,ionic,hydrogels,CIH,have,been,widely,studied,development,stretchable,electronic,devices,such,sensors,electrodes,actuators,Most,these,made,into,2D,shape,while,1D,fibers,often,difficult,make,because,low,mechanical,robustness,common,Herein,we,spinning,method,prepare,high,strength,large,stretchability,good,conductivity,drawn,from,composite,sodium,polyacrylate,PAAS,carboxymethyl,cel,CMC,In,soft,presents,rigid,significantly,enhances,toughness,To,protect,conductive,damage,thin,layer,hydrophobic,polymethyl,PMA,PBA,coated,water,resistant,insulating,cover,obtained,tensile,up,MJ,electrical,which,useful,textile
AB值:
0.50617
相似文献
Super-Tough and Environmentally Stable Aramid Nanofiber@MXene Coaxial Fibers with Outstanding Electromagnetic Interference Shielding Efficiency
Liu-Xin Liu;Wei Chen;Hao-Bin Zhang;Lvxuan Ye;Zhenguo Wang;Yu Zhang;Peng Min;Zhong-Zhen Yu-State Key Laboratory of Organic-Inorganic Composites,College of Materials Science and Engineering,Beijing University of Chemical Technology,Beijing 100029,People's Republic of China;Beijing Key Laboratory of Advanced Functional Polymer Composites,Beijing University of Chemical Technology,Beijing 100029,People's Republic of China;Beijing Key Laboratory of Advanced Functional Polymer Composites,Beijing University of Chemical Technology,Beijing 100029, People's Republic of China; Beijing Advanced Innovation Center for Soft Matter Science and Engineering,Beijing University of Chemical Technology,Beijing 100029, People's Republic of China
Biodegradable,Super-Strong,and Conductive Cellulose Macrofibers for Fabric-Based Triboelectric Nanogenerator
Sanming Hu;Jing Han;Zhijun Shi;Kun Chen;Nuo Xu;Yifei Wang;Ruizhu Zheng;Yongzhen Tao;Qijun Sun;Zhong Lin Wang;Guang Yang-College of Life Science and Technology,Huazhong University of Science and Technology,Wuhan 430074,People's Republic of China;Beijing Institute of Nanoenergy and Nanosystems,Chinese Academy of Sciences,Beijing 101400,People's Republic of China;State Key Laboratory of New Textile Materials and Advanced Processing Technologies,Wuhan Textile University,Wuhan 430200,People's Republic of China;School of Nanoscience and Technology,University of Chinese Academy of Sciences,Beijing 100049,People's Republic of China;Center On Nanoenergy Research,School of Physical Science and Technology,Guangxi University,Nanning 530004,People's Republic of China;School of Materials Science and Engineering,Georgia Institute of Technology,Atlanta,GA 30332-0245,USA
Humidity Sensing of Stretchable and Transparent Hydrogel Films for Wireless Respiration Monitoring
Yuning Liang;Qiongling Ding;Hao Wang;Zixuan Wu;Jianye Li;Zhenyi Li;Kai Tao;Xuchun Gui;Jin Wu-State Key Laboratory of Optoelectronic Materials and Technologies and the Guangdong Province Key Laboratory of Display Material and Technology,School of Electronics and Information Technology,Sun Yat-Sen University,Guangzhou 510275,People's Republic of China;Ministry of Education Key Laboratory of Micro and Nano Systems for Aerospace,Northwestern Polytechnical University,Xi'an 710072,People's Republic of China Acknowledgements J.W.acknowledges financial supports from the National Natural Science Foundation of China(61801525),the Guangdong Basic and Applied Basic Research Foundation(2020A1515010693)and the Fundamental Research Funds for the Central Universities,Sun Yat-sen University(22lgqb17).
机标中图分类号,由域田数据科技根据网络公开资料自动分析生成,仅供学习研究参考。