Department of Mechanical Engineering and Mechanics, Drexel University, 3141 Chestnut Street, Philadelphia, PA 19104, USA.
Nanotechnology. 2013 Apr 5;24(13):135704. doi: 10.1088/0957-4484/24/13/135704. Epub 2013 Mar 12.
We present an improvement in the electrical properties of silica nanotubes by coating metal nanoparticles on their surfaces. The silica nanotubes are formed from bacterial flagella bio-templates having a tubular structure. Successive depositions of metal nanoparticles on the silica nanotubes are performed through easily functionalized silica surfaces. The results show uniform metal nanoparticle sizes and a high surface area coverage. By incorporating gold, palladium and iron oxide nanoparticles, the metallized silica nanotubes gain electrical properties with the potential to create unique nanoelectronic materials. In this study, the metallized silica nanotubes with network structures are aligned and their electrical behaviors are investigated in both dry and wet conditions. The metallized silica nanotubes are found to be electrically conductive along the network structures. The current-voltage characteristics show remarkably improved electrical conductivities depending on the type of metal nanoparticle loading and nanotube network concentration.
我们通过在其表面涂覆金属纳米粒子来改善二氧化硅纳米管的电学性能。这些二氧化硅纳米管是由具有管状结构的细菌鞭毛生物模板形成的。通过易于功能化的二氧化硅表面,在二氧化硅纳米管上进行了金属纳米粒子的连续沉积。结果表明金属纳米粒子的尺寸均匀,并且具有高的表面积覆盖率。通过掺入金、钯和氧化铁纳米粒子,金属化的二氧化硅纳米管获得了具有创造独特纳米电子材料潜力的电学性能。在这项研究中,具有网络结构的金属化二氧化硅纳米管被排列,并在干燥和湿润条件下研究了它们的电行为。结果发现,金属化的二氧化硅纳米管沿网络结构具有导电性。电流-电压特性显示出取决于金属纳米粒子负载和纳米管网络浓度的显著改善的电导率。