Prado-Gotor R, López-Pérez G, Martín M J, Cabrera-Escribano F, Franconetti A
Department of Physical Chemistry, Faculty of Chemistry, University of Sevilla, C/Profesor García González n° 1, 41012 Sevilla, Spain.
Department of Physical Chemistry, Faculty of Chemistry, University of Sevilla, C/Profesor García González n° 1, 41012 Sevilla, Spain.
J Inorg Biochem. 2014 Jun;135:77-85. doi: 10.1016/j.jinorgbio.2014.03.005. Epub 2014 Mar 16.
A systematic study of the interaction between free anionic gold nanoparticles and chitosan in a solution is presented. A spectroscopic study of the interaction between 10nm gold nanoparticles and low molecular weight chitosan is reported as a function of the concentration and pH of the polymer in a solution. Zeta potential measurements and TEM images indicate the effective aggregation of the nanoparticles in the presence of chitosan. At the same time, anionic gold nanoparticles act as crosslink agents to form chitosan nanocapsules with an average molecular size of 260nm. The changes of the surface plasmon band due to the adsorption of the polymer on the nanoparticle surface allow using of the citrate gold nanoparticles as sensors of the polymer for analytical purposes. The limit of detection for chitosan biopolymer is 69nM. The optimum pH for the interaction between the biopolymer and the nanoparticles is found at a value of 6.4, obtained from spectrophotometric measurements and applying a deconvolution analysis of the experimental data. A simple model based on molecular surface electrostatic interactions is proposed to understand the pH dependence of the investigated system.
本文介绍了对溶液中游离阴离子金纳米颗粒与壳聚糖之间相互作用的系统研究。报道了对10nm金纳米颗粒与低分子量壳聚糖之间相互作用的光谱研究,该研究是溶液中聚合物浓度和pH值的函数。zeta电位测量和透射电子显微镜图像表明壳聚糖存在时纳米颗粒的有效聚集。同时,阴离子金纳米颗粒充当交联剂以形成平均分子大小为260nm的壳聚糖纳米胶囊。由于聚合物吸附在纳米颗粒表面而导致的表面等离子体带的变化使得柠檬酸盐金纳米颗粒可作为聚合物传感器用于分析目的。壳聚糖生物聚合物的检测限为69nM。通过分光光度测量并对实验数据进行去卷积分析,得出生物聚合物与纳米颗粒之间相互作用的最佳pH值为6.4。提出了一个基于分子表面静电相互作用的简单模型来理解所研究系统的pH依赖性。