Department of Materials Science and Engineering, National Chiao Tung University, 1001 Ta Hsueh Road, Hsinchu, Taiwan, 30050, R.O.C.
ACS Appl Mater Interfaces. 2010 Aug;2(8):2231-7. doi: 10.1021/am100256g.
Platinum (Pt) nanopetals were electrodeposited on highly ordered silicon nanocones (SiNCs) and explored as the electrocatalyst for methanol oxidation reaction (MOR) for direct methanol fuel cells applications. Highly ordered SiNCs array fabricated using the porous anodic aluminum oxide as the template had a high surface area. Well-dispersed Pt nanopetals possessing high electrocatalytic surface area was synthesized by pulse-electrodeposition on the SiNCs. Pt nanopetals loaded on highly ordered SiNC support exhibited very good catalytic activity for MOR and a high tolerance against CO poisoning, as compared to Pt nanoflowers/flat Si, Pt nanoparticles/flat Si, and many previously reported works. The abundance of a large surface area for facile transport of methanol, SiO(2) sites in the vicinity of the SiNCs, as well as less contact area between the Pt nanopetals catalyst and SiNCs are suggested to be the major factors enhancing the electrocatalytic performance of the Pt nanopetal/SiNC electrode. Moreover, we believe this new nanostructure (Pt nanopetals/SiNCs) will enable many new advances in nanotechnology.
铂(Pt)纳米花瓣通过电沉积在高度有序的硅纳米锥(SiNCs)上,并作为直接甲醇燃料电池应用中甲醇氧化反应(MOR)的电催化剂进行了探索。使用多孔阳极氧化铝作为模板制造的高度有序的 SiNCs 阵列具有高表面积。通过在 SiNCs 上进行脉冲电沉积,合成了具有高电催化表面积的高分散 Pt 纳米花瓣。与 Pt 纳米花/平面 Si、Pt 纳米颗粒/平面 Si 以及许多先前报道的工作相比,负载在高度有序的 SiNC 载体上的 Pt 纳米花瓣对 MOR 表现出非常好的催化活性,并且对 CO 中毒具有高耐受性。甲醇的大表面积有利于其传输、SiNC 附近的 SiO2 位以及 Pt 纳米花瓣催化剂和 SiNC 之间的接触面积较小,这些被认为是增强 Pt 纳米花瓣/SiNC 电极电催化性能的主要因素。此外,我们相信这种新的纳米结构(Pt 纳米花瓣/SiNCs)将为纳米技术带来许多新的进展。