Fibers reinforced composite hydrogels with improved lubrication and load-bearing capacity

被引:0
作者
Jiawei Li
Luyao Gao
Rongnian Xu
Shuanhong Ma
Zhengfeng Ma
Yanhua Liu
Yang Wu
Libang Feng
Meirong Cai
Feng Zhou
机构
[1] Chinese Academy of Sciences,Lanzhou Institute of Chemical Physics
[2] Lanzhou Jiaotong University,School of Mechanical Engineering
[3] Lanzhou University,School of Chemistry and Chemical Engineering
来源
Friction | 2022年 / 10卷
关键词
cartilage-inspired; fiber-enhanced; composite hydrogel; high strength; good toughness; lubrication; load-bearing; wear-resistance;
D O I
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中图分类号
学科分类号
摘要
Hydrogels as one kind of soft materials with a typical three-dimensional (3D) hydrophilic network have been getting great attention in the field of biolubrication. However, traditional hydrogels commonly show poor tribology performance under high-load conditions because of their poor mechanical strength and toughness. Herein, pure chemical-crosslinking hydrogels mixed with different types of the micron-scale fibers can meet the requirements of strength and toughness for biolubrication materials, meanwhile the corresponding tribology performance improves significantly. In a typical case, three kinds of reinforcement matrix including needle-punched fibers, alginate fibers, and cottons are separately combined with Poly(n-vinyl pyrrolidone)-poly(2-hydroxyethyl methacrylate (PVP-PHEMA) hydrogels to prepare fibers reinforced composite hydrogels. The experimental results show that the mechanical properties of fibers reinforced composite hydrogels improve greatly comparable with pure PVP-PHEMA hydrogels. Among three kinds of fibers reinforced composite hydrogel, the as-prepared composite hydrogels reinforced with needle-punched fibers possess the best strength, modulus, and anti-tearing properties. Friction tests indicate that the fibers reinforced composite hydrogels demonstrate stable water-lubrication performance comparable with pure PVP-PHEMA hydrogels. Besides, the hydrogel-spunlace fiber samples show the best load-bearing and anti-wear capacities. The improved tribology performance of the composite hydrogels is highly related to mechanical property and the interaction between the fibers and hydrogel network. Finally, spunlace fibers reinforced hydrogel materials with high load-bearing and low friction properties are expected to be used as novel biomimetic lubrication materials.
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页码:54 / 67
页数:13
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共 171 条
[1]  
Sun T L(2013)Physical hydrogels composed of polyampholytes demonstrate high toughness and viscoelasticity Nat Mater 12 932-937
[2]  
Kurokawa T(2001)Hydrogels for tissue engineering Chem Rev 101 1869-1880
[3]  
Kuroda S(2013)Composite three-dimensional woven scaffolds with interpenetrating network hydrogels to create functional synthetic articular cartilage Adv Funct Mater 23 5833-5839
[4]  
Ihsan A B(2016)Structural hydrogels Polymer 98 516-535
[5]  
Akasaki T(2009)Friction properties of Nanohydroxyapatite reinforced poly(vinyl alcohol) gel composites as an articular cartilage Wear 266 699-703
[6]  
Sato K(2016)Photothermally actuated interfacial hydration for fast friction switch on hydrophilic polymer brush modified PDMS sheet incorporated with Fe Chem Commun 52 3681-3683
[7]  
Haque M A(2016)O ACS Macro Lett 5 144-148
[8]  
Nakajima T(2014) nanoparticles ACS Appl Mater Interfaces 6 20452-20463
[9]  
Gong J P(2013)Magnetite-loaded thermosensitive nanogels for bioinspired lubrication and multimodal friction control ACS Appl Mater Interfaces 5 10842-10852
[10]  
Lee K Y(2001)Hairy polyelectrolyte brushes-grafted thermosensitive microgels as artificial synovial fluid for simultaneous biomimetic lubrication and arthritis treatment J Am Chem Soc 123 5582-5583