Gupta Amar Nath, Bohidar H B, Aswal V K
Polymer and Biophysics Lab, School of Physical Sciences, Jawaharlal Nehru University, New Delhi-110 067, India.
J Phys Chem B. 2007 Aug 30;111(34):10137-45. doi: 10.1021/jp070745s. Epub 2007 Aug 4.
The formation of selective surface patch binding induced complex coacervates between polyions, chitosan (cationic polyelectrolyte), and alkali-processed gelatin (polyampholyte), both carrying similar net charge, was investigated for two volumetric mixing ratios: r = [chitosan]/[gelatin] = 1:5 and 1:10. Formation of soluble intermolecular complexes between gelatin and chitosan molecules was observed in a narrow range of pH, though these biopolymers had the same kind of net charge, which was evidenced from electrophoretic measurement. This clearly established the role played by selective surface patch binding driven interactions. The temperature sweep measurements conducted on these coacervate samples through rheology and differential scanning calorimetry (DSC) studies yielded two characteristic melting temperatures located at approximately 68 +/- 3 degrees C and 82 +/- 3 degrees C. In the flow mode, the shear viscosity (eta) of the coacervate samples was found to scale with (power-law model) applied shear rate (gamma*) as eta(gamma*) approximately (gamma*)(-k); this yielded k = 0.76 +/- 0.2 (1 s(-1) < gamma* < 100 s(-1)), indicating non-Newtonian behavior. The static structure factor (I(q)) deduced from small angle neutron scattering (SANS) data in the low q (q is the scattering wavevector) (0.018 A(-1) < q < 0.072 A(-1)) region was fitted to the Debye-Bueche regime, I(q) approximately 1/(1 + zeta(2)q(2))2 that yielded a size of zeta approximately 215 +/- 20 A (for r = 1:10) and zeta approximately 260 +/- 20 A (for r = 1:5) samples, implying change in the size of inhomogeneities present with mixing ratio. In the intermediate q region, called the Ornstein-Zernike regime, I(q) approximately 1/(1 + xi(2)q(2)) gave a correlation length of xi approximately 10.0 +/- 2.0 A independent of the mixing ratio. The results taken together imply the existence of a weakly interconnected and heterogeneous network structure inside the coacervate phase separated by domains of polymer-poor regions.
研究了聚离子、壳聚糖(阳离子聚电解质)和碱处理明胶(聚两性电解质)之间选择性表面补丁结合诱导的复合凝聚层的形成,这两种物质都带有相似的净电荷,考察了两种体积混合比:r = [壳聚糖]/[明胶] = 1:5 和 1:10。尽管这些生物聚合物具有相同类型的净电荷,但在狭窄的pH范围内观察到明胶和壳聚糖分子之间形成了可溶性分子间复合物,这一点通过电泳测量得到了证实。这清楚地确立了选择性表面补丁结合驱动的相互作用所起的作用。通过流变学和差示扫描量热法(DSC)研究对这些凝聚层样品进行的温度扫描测量得到了两个特征熔化温度,分别位于约68±3℃和82±3℃。在流动模式下,发现凝聚层样品的剪切粘度(η)与施加的剪切速率(γ*)符合幂律模型,即η(γ*)≈(γ*)^(-k);由此得到k = 0.76±0.2(1 s^(-1) < γ* < 100 s^(-1)),表明具有非牛顿行为。从低q(q是散射波矢)(0.018 Å^(-1) < q < 0.072 Å^(-1))区域的小角中子散射(SANS)数据推导出的静态结构因子(I(q))被拟合到德拜 - 布歇区域,I(q)≈1/(1 + ζ^2q^2)^2,得到对于r = 1:10的样品ζ约为215±20 Å,对于r = 1:5的样品ζ约为260±20 Å,这意味着不均匀性的大小随混合比而变化。在中间q区域,即奥恩斯坦 - 泽尔尼克区域,I(q)≈1/(1 + ξ^2q^2)给出了约为10.0±2.0 Å的相关长度,与混合比无关。综合这些结果表明,在由聚合物贫乏区域的域分隔的凝聚层相内部存在弱相互连接的异质网络结构。