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解析阳离子纤维素纳米纤维水凝胶结构:NMR 光谱和小角中子散射分析。

Unravelling cationic cellulose nanofibril hydrogel structure: NMR spectroscopy and small angle neutron scattering analyses.

机构信息

Centre for Sustainable Chemical Technologies, University of Bath, Bath BA2 7AY, UK.

出版信息

Soft Matter. 2018 Jan 3;14(2):255-263. doi: 10.1039/c7sm02113e.

Abstract

Stiff, elastic, viscous shear thinning aqueous gels are formed upon dispersion of low weight percent concentrations of cationically modified cellulose nanofibrils (CCNF) in water. CCNF hydrogels produced from cellulose modified with glycidyltrimethylammonium chloride, with degree of substitution (DS) in the range 10.6(3)-23.0(9)%, were characterised using NMR spectroscopy, rheology and small angle neutron scattering (SANS) to probe the fundamental form and dimensions of the CCNF and to reveal interfibrillar interactions leading to gelation. As DS increased CCNF became more rigid as evidenced by longer Kuhn lengths, 18-30 nm, derived from fitting of SANS data to an elliptical cross-section, cylinder model. Furthermore, apparent changes in CCNF cross-section dimensions suggested an "unravelling" of initially twisted fibrils into more flattened ribbon-like forms. Increases in elastic modulus (7.9-62.5 Pa) were detected with increased DS and H solution-state NMR T relaxation times of the introduced surface -N(CH) groups were found to be longer in hydrogels with lower DS, reflecting the greater flexibility of the low DS CCNF. This is the first time that such correlation between DS and fibrillar form and stiffness has been reported for these potentially useful rheology modifiers derived from renewable cellulose.

摘要

在水中分散低重量百分比浓度的阳离子改性纤维素纳米纤维(CCNF)时,会形成刚性、弹性、粘性剪切稀化水凝胶。用氯代三甲铵(degree of substitution (DS) 在 10.6(3)-23.0(9)% 范围内)修饰纤维素制得的 CCNF 水凝胶,通过 NMR 光谱、流变学和小角中子散射(SANS)进行了表征,以探测 CCNF 的基本形态和尺寸,并揭示导致凝胶化的纤维间相互作用。随着 DS 的增加,CCNF 的刚性增加,这可以从 SANS 数据拟合到椭圆横截面、圆柱模型中得出的更长的 Kuhn 长度(18-30nm)来证明。此外,CCNF 横截面尺寸的明显变化表明,最初扭曲的纤维逐渐展开成更平坦的带状形式。随着 DS 的增加,弹性模量(7.9-62.5Pa)也有所增加,并且在具有较低 DS 的水凝胶中,引入的表面 -N(CH) 基团的 H 溶液状态 NMR T 弛豫时间更长,这反映了低 DS CCNF 的更大灵活性。这是首次报道这些源自可再生纤维素的潜在有用流变改性剂的 DS 与纤维形态和刚性之间的这种相关性。

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