Bhattacharjee Rama Ranjan, Chakraborty Mukut, Mandal Tarun K
Polymer Science Unit, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700 032, India.
J Phys Chem B. 2006 Apr 6;110(13):6768-75. doi: 10.1021/jp056675b.
Thermoresponsive gold nanoparticles (GNPs) have been prepared by the borohydride reduction of gold salt in the presence of water-soluble polymer, poly(vinyl methyl ether) (PVME). The PVME-coated GNPs (PVME-GNPs) have been assembled into large aggregates in the presence of polyelectrolytes, viz., poly(sodium-4 styrene sulfonate) and sodium salt of carboxymethylcellulose at low pH by raising the solution temperature from 20 to 40 degrees C. Increase of temperature triggers the interparticle association due to hydrophobic interaction of pendent methyl group of the surface adsorbed PVME. This assembly process is reversible with respect to temperature and pH of the medium and was studied by monitoring the change in surface plasmon resonance band of PVME-GNPs. Three-dimensional assemblies of various architectures, depending on the concentration of polyelectrolytes, were observed through transmission electron microscopy. A mechanistic model has been suggested for the reversible assembly formation that suits well with the experimental observations. The changes in optical properties of the PVME-GNPs due to their aggregation/disaggregation enabled us to use it as an effective tool to monitor the change in lower critical solution temperature (LCST) of PVME in the presence of polyelectrolytes due to interpolymer complexation at low pH. This result agrees well with the variation of LCST of pure aqueous PVME solution in the presence of polyelectrolytes measured by conventional turbidimetric technique.
通过在水溶性聚合物聚(乙烯基甲基醚)(PVME)存在下硼氢化还原金盐制备了热响应性金纳米颗粒(GNP)。在低pH值下,通过将溶液温度从20℃提高到40℃,PVME包覆的GNP(PVME-GNP)在聚电解质(即聚(4-苯乙烯磺酸钠)和羧甲基纤维素钠盐)存在下组装成大聚集体。温度升高触发了表面吸附的PVME侧链甲基的疏水相互作用导致的颗粒间缔合。该组装过程对于介质的温度和pH是可逆的,并通过监测PVME-GNP的表面等离子体共振带的变化进行了研究。通过透射电子显微镜观察到了取决于聚电解质浓度的各种结构的三维组装体。提出了一个适用于实验观察结果的可逆组装形成的机理模型。PVME-GNP由于其聚集/解聚导致的光学性质变化使我们能够将其用作监测低pH下由于聚合物间络合而在聚电解质存在下PVME的低临界溶液温度(LCST)变化的有效工具。该结果与通过传统比浊法测量的聚电解质存在下纯PVME水溶液的LCST变化非常吻合。