Consorzio Interuniversitario per lo Sviluppo dei Sistemi a Grande Interfase (CSGI), c/o Department of Food Technology (DISTAAM), Universita del Molise, I-86100 Campobasso, Italy.
Langmuir. 2010 Jul 6;26(13):10555-60. doi: 10.1021/la100584b.
Hollow structures on the submicrometer scale (nm) are obtained with the assembly of polyelectrolytes according to the layer-by-layer (LbL) technique. Following the LbL procedure, polymers alginate and chitosan were alternatively adsorbed on a vesicular template made of didodecyldimethylammonium bromide (DDAB). Evidence for the removal of the vesicular template entrapped in the alginate/chitosan film is presented. The removal of the vesicular template was achieved through interactions between a nonionic surfactant (Triton X100) and the double-chained surfactant forming the vesicles. The application of this approach allowed the production of hollow nanospheres with a mild procedure, avoiding the use of strong acids or other extreme working conditions that can modify the shell integrity. The obtained nanostructures were characterized by means of dynamic light scattering (DLS), the zeta potential, and scanning electron microscopy (SEM). The SEM analysis demonstrated the presence, after the core removal process, of nanocapsules indistinguishable in size and shape from the parent core-shell system. The analysis of the surface charge of the hollow nanocapsules, after the core dissolution, by zeta potential measurements, indicates good aggregate stability. DLS measurements showed that the size of the nanocapsules is on the order of hundreds of nanometers. Moreover, the size of both the core-shell and the hollow particles did not appear to be perturbed by variations in temperature or ionic strength.
采用层层自组装(LbL)技术,可将聚电解质组装成亚微米级(nm)的中空结构。按照 LbL 程序,交替将海藻酸钠和壳聚糖吸附在由双十二烷基二甲基溴化铵(DDAB)制成的囊泡模板上。本文提出了去除包埋在海藻酸钠/壳聚糖薄膜中的囊泡模板的证据。通过非离子表面活性剂(Triton X100)与形成囊泡的双链表面活性剂之间的相互作用,可去除囊泡模板。该方法的应用可在温和的条件下生产中空纳米球,避免使用强酸或其他极端工作条件,这些条件可能会改变壳的完整性。通过动态光散射(DLS)、zeta 电位和扫描电子显微镜(SEM)对所得纳米结构进行了表征。SEM 分析表明,在核去除过程之后,存在纳米胶囊,其在尺寸和形状上与原始核壳系统无法区分。通过 zeta 电位测量对中空纳米胶囊的表面电荷进行分析,表明其具有良好的聚集稳定性。DLS 测量表明,纳米胶囊的尺寸约为数百纳米。此外,核壳和空心颗粒的尺寸似乎不受温度或离子强度变化的影响。