Synthesis and characterization of mechanically flexible and tough cellulose nanocrystals–polyacrylamide nanocomposite hydrogels

被引:7
作者
Jun Yang
Chun-Rui Han
Jiu-Fang Duan
Ming-Guo Ma
Xue-Ming Zhang
Feng Xu
Run-Cang Sun
机构
[1] Beijing Forestry University,Institute of Biomass Chemistry and Technology
[2] Beijing Forestry University,College of Materials Science and Technology
来源
Cellulose | 2013年 / 20卷
关键词
Hydrogel; Nanocomposite; Cellulose nanocrystal; Polyacrylamide; Strength;
D O I
暂无
中图分类号
学科分类号
摘要
The unique combinations of hard and soft components with core/shell structures were proposed to synthesize high strength nanocomposite hydrogels. The elastomeric hydrogels containing rod-like cellulose nanocrystals (CNCs) core and polyacrylamide shell were made from aqueous solutions via free radical polymerization in the absence of chemical cross-links. The obtained hydrogels possessed greater tensile strength and elongation ratio when compared with chemically cross-linked counterparts. Oscillatory shear experiments indicated that CNCs interacted with polymer matrix via both chemical and physical interactions and contributed to the rubbery elasticity of the hydrogels. The nanocomposite hydrogels were more viscous than the chemical hydrogels, suggesting the addition of CNC led to the increase of energy dissipating and viscoelastic properties. The network structure model was proposed and it suggested that the high extensibilities and fracture stresses were related to the well-defined network structures with low cross-linking density and lack of noncovalent interactions among polymer chains, which may promote the rearrangements of network structure at high deformations.
引用
收藏
页码:227 / 237
页数:10
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共 152 条
  • [21] Lackey MA(2011)Dual-responsive and super absorbing thermally cross-linked hydrogel based on methacrylate substituted polyphosphazene Soft Matter 7 4414-487
  • [22] Madkour AE(2001)The polyrotaxane gel: a topological gel by figure-of-eight cross-links Adv Mater 13 485-262
  • [23] Saffer EM(2011)Multipurpose smart hydrogel systems Adv Colloid Interface 168 247-2371
  • [24] Griffin DM(2010)Hydrogel nanocomposites: a review of applications as remote controlled biomaterials Soft Matter 6 2364-11877
  • [25] Bhatia SR(2010)Role of nanocomposite hydrogel morphology in the electrophoretic separation of biomolecules: a review Ind Eng Chem Res 49 11866-494
  • [26] Crosby AJ(2010)Microfibrillated cellulose and new nanocomposite materials: a review Cellulose 17 459-1237
  • [27] Tew GN(2012)Superabsorbent hydrogel nanocomposites based on starch-g-poly(sodium acrylate) matrix filled with cellulose nanowhiskers Cellulose 19 1225-2888
  • [28] Das D(2012)Hydrogels for protein delivery Chem Rev 112 2853-783
  • [29] Kar T(2012)Large deformation behavior and effective network chain density of swollen poly(N-isopropylacrylamide)–laponite nanocomposite hydrogels Soft Matter 8 774-2927
  • [30] Das PK(2007)Large strain hysteresis and mullins effect of tough double-network hydrogels Macromolecules 40 2919-8224