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Mechanical and Viscoelastic Properties of Cellulose Nanocrystals Reinforced Poly(ethylene glycol) Nanocomposite Hydrogels

机译:纤维素纳米晶体增强的聚乙二醇纳米复合水凝胶的力学和粘弹性

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摘要

The preparation and mechanical properties of elastomeric nanocomposite hydrogels consisting of cellulose nanocrystals (CNCs) and poly(ethylene glycol) (PEG) are reported. The aqueous nanocomposite CNC/PEG precursor solutions covalently cross-linked through a one-stage photo-cross-linking process. The mechanical properties of nanocomposite hydrogels, including Young's modulus (£), fracture stress (a), and fracture strain (e), were measured as a function of CNC volume fraction (φ_(CNC), 0.2-1.8%, v/v) within polymeric matrix. It was found that the homogeneously dispersed nanocomposite hydrogels can be prepared with φ_(CNC) being less than 1.5%, whereas the heterogeneous nanocomposite hydrogels were obtained with φ_(CNC) heing higher than 1.5%. The nanocomposite hydrogels exhibited higher strengths and flexibilities when compared with neat PEG hydrogels, where the modulus, fracture stress, and fracture strain enhanced by a factor of 3.48, 5, and 3.28, respectively, over the matrix material alone at 1.296 v/v CNC loading. Oscillatory shear data indicated the CNC-PEG nanocomposite hydrogels were more viscous than the neat PEG hydrogels and were efficient at energy dissipation due to the reversible interactions between CNC and PEG polymer chains. It was proposed that the strong gel viscoelastic behavior and the mechanical reinforcement were related to "filler network", where the temporary interactions between CNC and PEG interfered with the covalent cross-links of PEG.
机译:报道了由纤维素纳米晶体(CNC)和聚(乙二醇)(PEG)组成的弹性体纳米复合水凝胶的制备和力学性能。纳米复合CNC / PEG前体水溶液通过一阶段的光交联过程共价交联。测量了纳米复合水凝胶的机械性能,包括杨氏模量(£),断裂应力(a)和断裂应变(e),与CNC体积分数(φ_(CNC),0.2-1.8%,v / v )在聚合物基质中。发现可以制备出φ_(CNC)小于1.5%的均匀分散的纳米复合水凝胶,而获得φ_(CNC)大于1.5%的非均相纳米复合水凝胶。与纯PEG水凝胶相比,纳米复合水凝胶表现出更高的强度和柔韧性,后者在1.296 v / v CNC上比单独的基质材料的模量,断裂应力和断裂应变分别提高了3.48、5和3.28倍。加载中。振荡剪切数据表明,CNC-PEG纳米复合水凝胶比纯PEG水凝胶更粘,并且由于CNC和PEG聚合物链之间可逆的相互作用而在能量耗散方面有效。有人提出强的凝胶粘弹性行为和机械增强作用与“填充网络”有关,其中CNC和PEG之间的暂时相互作用会干扰PEG的共价交联。

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