Université de Nantes, CNRS, Institut des Matériaux Jean Rouxel, UMR 6502, 2 rue de la Houssinière, BP 32229, 44322 Nantes Cedex 3, France.
Nanotechnology. 2011 Oct 28;22(43):435302. doi: 10.1088/0957-4484/22/43/435302.
Hierarchical carbon nanostructures based on ultra-long carbon nanofibers (CNF) decorated with carbon nanotubes (CNT) have been prepared using plasma processes. The nickel/carbon composite nanofibers, used as a support for the growth of CNT, were deposited on nanopatterned silicon substrate by a hybrid plasma process, combining magnetron sputtering and plasma-enhanced chemical vapor deposition (PECVD). Transmission electron microscopy revealed the presence of spherical nanoparticles randomly dispersed within the carbon nanofibers. The nickel nanoparticles have been used as a catalyst to initiate the growth of CNT by PECVD at 600°C. After the growth of CNT onto the ultra-long CNF, SEM imaging revealed the formation of hierarchical carbon nanostructures which consist of CNF sheathed with CNTs. Furthermore, we demonstrate that reducing the growth temperature of CNT to less than 500°C leads to the formation of carbon nanowalls on the CNF instead of CNT. This simple fabrication method allows an easy preparation of hierarchical carbon nanostructures over a large surface area, as well as a simple manipulation of such material in order to integrate it into nanodevices.
基于超长长碳纤维 (CNF) 上装饰有碳纳米管 (CNT) 的分层碳纳米结构已通过等离子体工艺制备。镍/碳复合纳米纤维用作 CNT 生长的支撑体,通过结合磁控溅射和等离子体增强化学气相沉积 (PECVD) 的混合等离子体工艺沉积在纳米图案化硅衬底上。透射电子显微镜显示,在碳纤维纳米纤维内随机分散有球形纳米颗粒。镍纳米颗粒已被用作通过在 600°C 下的 PECVD 引发 CNT 生长的催化剂。在 CNT 生长到超长 CNF 上之后,SEM 成像显示出由 CNT 包裹的 CNF 形成的分层碳纳米结构。此外,我们证明,将 CNT 的生长温度降低到 500°C 以下会导致 CNT 而不是 CNT 在 CNF 上形成碳纳米墙。这种简单的制造方法允许在大面积上轻松制备分层碳纳米结构,并且可以简单地操纵这种材料以将其集成到纳米器件中。