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Strong, tough and mechanically self-recoverable poly(vinyl alcohol)/alginate dual-physical double-network hydrogels with large cross-link density contrast

机译:强,坚韧和机械可自恢复的聚(乙烯醇)/海藻酸盐双物理双网络水凝胶,具有大的交联密度对比度

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摘要

Strong and tough poly(vinyl alcohol) (PVA)/alginate hydrogen-bonded-ionic dual-physical double-network (DN) hydrogels have been successfully prepared by a facile route of a freeze-thaw (25-25-25 degrees C) cycle followed by concentrated (1.0 mol L-1 of) aqueous-Ca2+ immersion of PVA/Na alginate (SA) mixed aqueous solutions. It was found that, at mole ratios of the PVA- to SA repeat units of 20/1 to 80/1, the DN gels likely evolved a semi-interpenetrating polymer network (IPN) morphology of rigid alginate networks dispersed in while interlocking with ductile PVA network to accomplish DN synergy that gave their high strength and toughness, where the high alginate rigidity originated probably from its dense cross-link induced syneresis and dispersion along crosslink-defective voids to result in little internal stress concentration. Tentatively mechanistically, as the 20/1-80/1 DN gels were stretched steadily, their mechanical response was gradually differentiated into distinct synergistic states: the sparsely hydrogen-bonded PVA served as a ductile matrix to bear small fractions of the established stresses at its large elongations; whereas the densely ionically (i.e. Ca2+) cross-linked alginate functioned as a rigid skeleton to sustain the remaining larger stresses upon its smaller local strains. Promisingly, this ductile-rigid matrix-skeleton synergistic mechanism of semi-IPN morphology may be universally extended to all A/B DN hydrogels of large A-B rigidity (or cross-link density) contrast, whether the cross-link nature of network(s) A or B is covalent, ionic, hydrogen bonded or van der Waals interacted. The strong and tough DN gels also displayed satisfactory self-recovery of viscoelastic behaviour, in that their Young's modulus and dissipated energy in the uniaxial tensile mode and dynamic storage and loss moduli in the oscillatory shear mode all recovered significantly from non-linear viscoelastic regimes despite different degrees of failure to revert to (quasi) linear viscoelasticity.
机译:通过冻融(25-25-25摄氏度)的容易路径成功地制备了强且坚韧的聚(乙烯醇)/藻酸盐氢键离子双 - 物理双网络(DN)水凝胶(25-25-25℃)循环,然后浓缩(1.0mol L-1)-Ca2 +浸渍PVA / Na藻酸盐(SA)混合水溶液。发现,在20/1至80/1的PVA-至SA重复单元的痣比下,DN凝胶可能演变在与延性互锁的同时分散在分散在突出的半渗透性网络(IPN)形态PVA网络来完成DN协同作用给他们的高强度和韧性,其中高刚性海藻可能起源于一起交联缺陷空隙其密集的交联引起脱水和分散导致小的内部应力集中。暂时地机械地,随着20 / 1-80 / 1dN凝胶稳步拉伸,它们的机械反应逐渐分化成明显的协同状态:稀疏的氢键PVA用作延展性基质,以承受其既定应力的少数部分伸长伸长;而密集离子(即Ca2 +)交联藻酸盐作为刚性骨架,以在其较小的局部菌株上维持剩余的较大应力。优先的是,半IPN形态的这种延性刚性基质 - 骨架协同机制可以普遍扩展到大AB刚度(或交联密度)对比的所有A / B DN水凝胶,无论是网络的交叉链接性质(S )A或B是共价,离子,氢键或van der Wa的相互作用。强硬和艰难的DN凝胶也表现出令人满意的自我回收粘弹性行为,因为它们的杨氏模量和振荡剪切模式中的单轴拉伸模式和动态储存和损失模量仍然从非线性粘弹性制度显着回收。不同程度的失败来恢复(准)线性粘弹性。

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  • 来源
    《RSC Advances》 |2018年第30期|共16页
  • 作者单位

    Hubei Univ Technol Hubei Prov Key Lab Green Mat Light Ind Wuhan 430068 Hubei Peoples R China;

    Hubei Univ Technol Sch Mat &

    Chem Engn Wuhan 430068 Hubei Peoples R China;

    Hubei Univ Technol Sch Mat &

    Chem Engn Wuhan 430068 Hubei Peoples R China;

    Hubei Univ Technol Sch Mat &

    Chem Engn Wuhan 430068 Hubei Peoples R China;

    Hubei Univ Technol Hubei Prov Key Lab Green Mat Light Ind Wuhan 430068 Hubei Peoples R China;

    Hubei Univ Technol Hubei Prov Key Lab Green Mat Light Ind Wuhan 430068 Hubei Peoples R China;

    Hubei Univ Technol Hubei Prov Key Lab Green Mat Light Ind Wuhan 430068 Hubei Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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