Suppr超能文献

在混合粘土分散体中的通用溶胶态行为和胶凝动力学。

Universal sol state behavior and gelation kinetics in mixed clay dispersions.

机构信息

Nanomaterials and Nanocomposite Laboratory School of Physical Sciences, Jawaharlal Nehru University, New Delhi-110067, India.

出版信息

Langmuir. 2011 May 3;27(9):5193-203. doi: 10.1021/la1048453. Epub 2011 Apr 6.

Abstract

Sol and gel state behavior, in aqueous salt free dispersions, of clays Laponite (L) and Na montmorillonite (MMT) was studied at various mixing ratios (L:MMT = r = 1:0.5, 1:1, and 1:2). In the sol state, the zeta potential and gelation concentration of L-MMT obeyed the universal relation, X(L-MMT) = (rX(L) + X(MMT))/(1 + r), where X is zeta potential or gelation concentration (c(g)), implying that these properties are linear combinations of the same of their individual components. The low frequency storage modulus (G(0)'), relative viscosity (η(r)), and apparent cluster size (R) could be universally described by the power-law, G(0)' ∼ ((c/c(g)) - 1)(t) (c > c(g)), and η(r), R ∼ (1 - (c/c(g)))(-k,ν) (c < c(g)), with t = 1.5, k = 1.1, and υ = 0.8 close to the gelation concentration, for r = 1:1 cogel, consistent with the percolation model description of gelation. Interestingly, the hyperscaling relation δ = t/(k + t) yielded δ = 0.56 not too different from the predicted value ∼0.7, while the experimental value of δ obtained from G''(ω) ∼ ω(δ) close to c ≈ c(g) yielded δ = 1.5, which was at variance with the hyperscaling result. The experimental data, on hand, mostly supported percolation type gelation mechanism. As the cogels were slowly heated, at a characteristic temperature, T(g), a sharp increase in G' value was noticed, implying a transition to gel hardening (a new phase state). The temperature-dependent behavior followed the power-law description, G' ∼ (T(g) - T)(-γ) (T < T(g)), with γ = 0.40 ± 0.05 invariant of composition of the cogel, whereas for MMT and Laponite, γ = 0.25 and 0.55, respectively. It has been shown that the cogel has significantly enhanced mechanical (G(0) increased by 10 times for r = 1:1 cogel) and thermal properties (T(g) increased by 13 °C for 1:1 cogel) that can be exploited to design customized soft materials.

摘要

在各种混合比例(L:MMT=r=1:0.5、1:1 和 1:2)下,研究了粘土 Laponite(L)和 Na 蒙脱石(MMT)在无盐水性分散体中的溶胶和凝胶状态行为。在溶胶状态下,L-MMT 的 ζ 电位和凝胶浓度符合通用关系 X(L-MMT)=(rX(L)+X(MMT))/(1+r),其中 X 是 ζ 电位或凝胶浓度(c(g)),这意味着这些性质是其各自组分的线性组合。低频储能模量(G(0)')、相对粘度(η(r))和表观簇大小(R)可以通过幂律 G(0)'∼((c/c(g))-1)(t)(c>c(g))和 η(r)、R∼(1-(c/c(g)))(-k,ν)(c<c(g))来普遍描述,其中 t=1.5、k=1.1 和 υ=0.8 接近凝胶浓度,对于 r=1:1 cogel,符合凝胶的渗流模型描述。有趣的是,超标度关系 δ=t/(k+t) 给出的 δ=0.56 与预测值∼0.7 相差不大,而从接近 c≈c(g) 的 G''(ω)∼ω(δ) 获得的实验 δ 值为 δ=1.5,这与超标度结果不一致。现有的实验数据主要支持渗流型凝胶化机制。当共凝胶缓慢加热到特征温度 T(g)时,G'值会突然增加,这表明发生了向凝胶硬化(新的相态)的转变。温度依赖性行为遵循幂律描述 G'∼(T(g)-T)(-γ)(T<T(g)),其中 γ=0.40±0.05 与共凝胶的组成无关,而对于 MMT 和 Laponite,γ 分别为 0.25 和 0.55。研究表明,共凝胶具有显著增强的机械性能(对于 r=1:1 cogel,G(0)增加了 10 倍)和热性能(对于 1:1 cogel,T(g)增加了 13°C),可以用于设计定制的软材料。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验