Muscle-inspired anisotropic carboxymethyl cellulose-based double-network conductive hydrogels for flexible strain sensors

被引:20
作者
Zhong, Li
Zhang, Yuhui
Liu, Fei
Wang, Luzhen
Feng, Qian
Chen, Chuchu
Xu, Zhaoyang [1 ]
机构
[1] Nanjing Forestry Univ, Jiangsu Coinnovat Ctr Efficient Proc & Utilizat Fo, Nanjing 210037, Peoples R China
基金
中国国家自然科学基金;
关键词
Carboxymethyl cellulose; Double network hydrogel; Anisotropic structure; Strain sensor; Ionic conductivity; NANOFIBRILS;
D O I
10.1016/j.ijbiomac.2023.125973
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Conductive hydrogels are considered one of the most promising materials for preparing flexible sensors due to their flexible and extensible properties. However, conventional hydrogels' weak mechanical and isotropic properties are greatly limited in practical applications. Here, the internal structure of the hydrogel was regulated by pre-stretching synergistic ion crosslinking to construct a carboxymethyl cellulose-based double networkoriented hydrogel similar to muscle. The introduction of pre-stretching increased the tensile strength of the double-network hydrogel from 1.45 MPa to 4.32 MPa, and its light transmittance increased from 67.3 % to 84.5 %. In addition, the hydrogel's thermal stability and electrical conductivity were improved to a certain extent. Its good mechanical properties and conductive properties can be converted into stable electrical signal output during deformation. The carboxymethyl cellulose-based double network oriented hydrogels were further assembled as flexible substrates into flexible sensor devices. The hydrogel sensors can monitor simple joint movements as well as complex spatial movements, which makes them have potential application value in the research field of intelligent response electronic devices such as flexible wearables, intelligent strain sensing, and soft robots.
引用
收藏
页数:11
相关论文
共 59 条
[1]   Synthesis and characterization of sodium carboxymethylcellulose from cavendish banana pseudo stem (Musa cavendishii LAMBERT) [J].
Adinugraha, MP ;
Marseno, DW ;
Haryadi .
CARBOHYDRATE POLYMERS, 2005, 62 (02) :164-169
[2]   Photo-crosslinking ionic conductive PVA-SbQ/FeCl3 hydrogel sensors [J].
Bai, Huiyu ;
Chen, Daiwei ;
Zhu, Haiyan ;
Zhang, Shengwen ;
Wang, Wei ;
Ma, Piming ;
Dong, Weifu .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2022, 648
[3]   Formation of high strength double-network gels from cellulose nanofiber/polyacrylamide via NaOH gelation treatment [J].
Chen, Chuchu ;
Li, Dagang ;
Abe, Kentaro ;
Yano, Hiroyuki .
CELLULOSE, 2018, 25 (09) :5089-5097
[4]   Reinforcement of cellulose nanofibers in polyacrylamide gels [J].
Chen, Chuchu ;
Wang, Haiying ;
Li, Suiyi ;
Fang, Lu ;
Li, Dagang .
CELLULOSE, 2017, 24 (12) :5487-5493
[5]   Anisotropic thermoresponsive hydrogels by mechanical force orientation of clay nanosheets [J].
Chen, Lie ;
Wu, Qingshan ;
Zhang, Jianqi ;
Zhao, Tianyi ;
Jin, Xu ;
Liu, Mingjie .
POLYMER, 2020, 192
[6]   Anisotropic hydrogels with enhanced mechanical and tribological performance by magnetically oriented nanohybrids [J].
Chen, Qin ;
Zhang, Xinyue ;
Chen, Kai ;
Wu, Xiaofang ;
Zong, Tian ;
Feng, Cunao ;
Zhang, Dekun .
CHEMICAL ENGINEERING JOURNAL, 2022, 430
[7]   High strength, anti-freezing and strain sensing carboxymethyl cellulose-based organohydrogel [J].
Cheng, Ya ;
Ren, Xiuyan ;
Gao, Guanghui ;
Duan, Lijie .
CARBOHYDRATE POLYMERS, 2019, 223
[8]   Nanocellulose-enhanced organohydrogel with high-strength, conductivity, and anti-freezing properties for wearable strain sensors [J].
Cheng, Yanpeng ;
Zang, Junjiao ;
Zhao, Xin ;
Wang, Hang ;
Hu, Yingcheng .
CARBOHYDRATE POLYMERS, 2022, 277
[9]   Highly Elastic and Superstretchable Graphene Oxide/Polyacrylamide Hydrogels [J].
Cong, Huai-Ping ;
Wang, Ping ;
Yu, Shu-Hong .
SMALL, 2014, 10 (03) :448-453
[10]   Recent Progress in Natural Biopolymers Conductive Hydrogels for Flexible Wearable Sensors and Energy Devices: Materials, Structures, and Performance [J].
Cui, Chen ;
Fu, Qingjin ;
Meng, Lei ;
Hao, Sanwei ;
Dai, Rengang ;
Yang, Jun .
ACS APPLIED BIO MATERIALS, 2021, 4 (01) :85-121