Cataldo Sebastiano, Pignataro Bruno, Ruggirello Angela, Bongiorno Corrado, Liveri Vincenzo Turco
Dipartimento di Chimica Fisica 'F. Accascina', Università di Palermo, Viale delle Scienze, Parco D'Orleans II, Ed 17-90128 Palermo, Italy.
Nanotechnology. 2009 Jun 3;20(22):225605. doi: 10.1088/0957-4484/20/22/225605. Epub 2009 May 13.
Cobalt nanostructures have been prepared by a chemical route based on the Co(II) reduction in the confined space of cobalt bis(2-ethylhexyl)sulfosuccinate (Co(DEHSS)(2)) reverse micelles dispersed in n-heptane. This procedure involves the rapid formation of surfactant softly coated Co nanostructures followed by a slow separation process of the magnetic-field responsive Co/surfactant nanocomposites from the liquid phase. The detailed structure of thin films of the Co/surfactant nanocomposites has been investigated by scanning force microscopy (SFM). The thin films were characterized by different anisotropic features. Micrometric long domains of self-aligned ellipsoidal NPs (tens of nanometers in size) have been observed, together with bendable micrometric long homogeneous nanofibers (NFs). The film structures were strongly dependent on the Co/surfactant ratio and, by increasing the Co percentage, the system was forced towards the formation of mutually connected superstructures consisting of anisotropic bands of self-aligned NFs and anisotropic 2D close packed Co-NP super-lattices. Transmission electron microscopy (TEM) showed that the NPs observed by SFM are in effect composed of almost spherical and oxygen-free cobalt nanoparticles, 1-3 nm in size, which typically assemble in larger ellipsoidal systems tens of nanometers in size. Magnetic force microscopy (MFM) demonstrates the magnetic response of these thin films, highlighting the different behavior (attractive/repulsive) of the Co-NPs aggregates towards the oscillating magnetized tip. The above structural findings have been interpreted in terms of nanostructures/matrix interaction along with a fine balance between short-range isotropic repulsions, van der Waals attractions and long-range anisotropic magnetic interactions.
通过化学方法,在分散于正庚烷中的双(2-乙基己基)磺基琥珀酸钴(Co(DEHSS)(2))反胶束的受限空间内还原Co(II),制备了钴纳米结构。该过程包括快速形成表面活性剂软包覆的Co纳米结构,随后是磁场响应性Co/表面活性剂纳米复合材料从液相中的缓慢分离过程。通过扫描力显微镜(SFM)研究了Co/表面活性剂纳米复合材料薄膜的详细结构。这些薄膜具有不同的各向异性特征。观察到了自排列的椭球形纳米粒子(尺寸为几十纳米)的微米级长域,以及可弯曲的微米级长均匀纳米纤维(NFs)。薄膜结构强烈依赖于Co/表面活性剂的比例,通过增加Co的百分比,系统被迫形成由自排列NFs的各向异性带和各向异性二维密排Co-NP超晶格组成的相互连接的超结构。透射电子显微镜(TEM)表明,SFM观察到的纳米粒子实际上由尺寸为1-3nm的几乎球形且无氧的钴纳米粒子组成,这些粒子通常组装成尺寸为几十纳米的较大椭球形系统。磁力显微镜(MFM)展示了这些薄膜的磁响应,突出了Co-NPs聚集体对振荡磁化尖端的不同行为(吸引/排斥)。上述结构发现已根据纳米结构/基质相互作用以及短程各向同性排斥、范德华引力和长程各向异性磁相互作用之间的精细平衡进行了解释。