Huang Haoliang, Liu Yingju, Gao Qiongzhi, Ruan Weishuo, Lin Xiaomin, Li Xin
Institute of Biomaterials, Department of Applied Chemistry, College of Sciences, South China Agricultural University , Guangzhou 510642, China.
ACS Appl Mater Interfaces. 2014 Jul 9;6(13):10258-64. doi: 10.1021/am5016606. Epub 2014 Jun 23.
The interaction within heterogeneous nanostructures can provide a great opportunity to radically enhance their electrocatalytic properties and increase their activity and durability. Here a rational, simple, and integrated strategy is reported to construct uniform and strongly coupled metal-metal oxide-graphene nanostructure as an electrocatalyst with high performance. We first simply synthesized the interacted SnO2-prGO (protected and reduced graphene oxide) hybrid with SnO2 nanoparticles (∼4 nm) selectively anchored on the oxygenated defects of rGO using an in situ redox and hydrolysis reaction. After the deposition of Pt, uniform Pt NPs are found to contact intimately and exclusively with the SnO2 phase in the SnO2-prGO hybrid. This constructed nanostructure (Pt-SnO2-prGO) exhibits significantly improved electrocatalytic activity (2.19-fold) and durability (2.08-fold) toward methanol oxidation over that of the state-of-the-art Pt/C catalyst. The detailed explanation of the strong coupling between SnO2 and graphene as well as between Pt and SnO2 is discussed, revealing that such a process can be used to immobilize various metal catalysts on metal-oxide-decorated catalysts for realizing advanced catalytic systems with enhanced performance.
异质纳米结构中的相互作用为从根本上增强其电催化性能、提高其活性和耐久性提供了绝佳机会。本文报道了一种合理、简单且集成的策略,用于构建均匀且强耦合的金属-金属氧化物-石墨烯纳米结构作为高性能电催化剂。我们首先通过原位氧化还原和水解反应简单合成了相互作用的SnO₂-prGO(保护和还原的氧化石墨烯)杂化物,其中SnO₂纳米颗粒(约4纳米)选择性地锚定在rGO的含氧缺陷上。沉积Pt后,发现均匀的Pt NPs与SnO₂-prGO杂化物中的SnO₂相紧密且唯一地接触。这种构建的纳米结构(Pt-SnO₂-prGO)对甲醇氧化的电催化活性(提高了2.19倍)和耐久性(提高了2.08倍)比最先进的Pt/C催化剂有显著提高。文中讨论了SnO₂与石墨烯之间以及Pt与SnO₂之间强耦合的详细解释,揭示了这样的过程可用于将各种金属催化剂固定在金属氧化物修饰的催化剂上,以实现性能增强的先进催化体系。