Potter K, McFarland E W
Department of Chemical Engineering, University of California, Santa Barbara 93106, USA.
Solid State Nucl Magn Reson. 1996 Jul;6(4):323-31. doi: 10.1016/0926-2040(94)00053-0.
Polyelectrolyte biopolymers such as calcium alginate are becoming increasingly important for the recovery of heavy metals from aqueous solutions. To understand the mechanism of ion transport in these biopolymer systems, the transport of copper ions into calcium alginate gels was investigated using proton nuclear magnetic resonance (NMR) microscopy. Copper ion transport was imaged using an inversion recovery technique which utilizes the paramagnetic effect of copper on water proton relaxation times. Diffusion experiments were performed in a diffusion cell designed to approximate a semi-infinite slab geometry at temperatures between 278 and 313 K using copper reservoir concentrations between 10 and 60 mM. The diffusion coefficient of copper in these gels was calculated from the NMR data to fit a combined diffusion-reaction model involving a diffusion term (D) and a kinetic binding term (k). At 23 degrees C, the diffusion coefficients in 1, 2, and 3% (w/v) gels were 3.1 x 10(10), 2.0 x 10(10), and 1.4 x 10(10) m2/s, respectively. The activation energy for diffusion in the 2% (w/v) gel was 28 kJ/mol.
诸如海藻酸钙之类的聚电解质生物聚合物在从水溶液中回收重金属方面正变得越来越重要。为了理解这些生物聚合物体系中的离子传输机制,使用质子核磁共振(NMR)显微镜研究了铜离子向海藻酸钙凝胶中的传输。利用铜对水质子弛豫时间的顺磁效应,采用反转恢复技术对铜离子传输进行成像。在设计为近似半无限平板几何形状的扩散池中,于278至313 K的温度下,使用10至60 mM的铜储备液浓度进行扩散实验。根据NMR数据计算铜在这些凝胶中的扩散系数,以拟合一个涉及扩散项(D)和动力学结合项(k)的组合扩散-反应模型。在23摄氏度时,1%、2%和3%(w/v)凝胶中的扩散系数分别为3.1×10⁻¹⁰、2.0×10⁻¹⁰和1.4×10⁻¹⁰ m²/s。在2%(w/v)凝胶中扩散的活化能为28 kJ/mol。