Zhu Chengzhou, Fu Shaofang, Du Dan, Lin Yuehe
School of Mechanical and Materials Engineering, Washington State University, Pullman, Washington, 99164-2920, USA.
Chemistry. 2016 Mar 14;22(12):4000-7. doi: 10.1002/chem.201504739. Epub 2016 Feb 4.
Great efforts in developing clean electrochemical water splitting technology leads to the rational design and synthesis of highly efficient oxygen evolution reaction (OER) catalysts with low overpotential and fast reaction kinetics. Herein, we focus on the role that morphology and composition play in the OER performance to rationally design freestanding 3D porous NiCo2O4 nanosheets with metal valence states alteration and abundant oxygen vacancies as robust electrocatalysts towards water splitting. Besides metal valence-state alteration, surface modification regarding the evolution of oxygen vacancies is facilely realized upon the sodium borohydride treatment, which is beneficial for the enhanced OER performance. Taking advantage of the porous nanostructures and abundant surface activity sites with high reactivity, the resultant nanostructures exhibit excellent OER activity and stability in alkaline electrolytes that outperform that of pristine NiCo2O4 and commercial RuO2, thus holding great potential for the water splitting.
在开发清洁电化学水分解技术方面的巨大努力促使人们合理设计和合成具有低过电位和快速反应动力学的高效析氧反应(OER)催化剂。在此,我们关注形貌和组成在OER性能中所起的作用,以合理设计具有金属价态改变和丰富氧空位的独立式三维多孔NiCo2O4纳米片作为水分解的稳健电催化剂。除了金属价态改变外,通过硼氢化钠处理可轻松实现关于氧空位演变的表面改性,这有利于提高OER性能。利用多孔纳米结构和具有高反应活性的丰富表面活性位点,所得纳米结构在碱性电解质中表现出优异的OER活性和稳定性,优于原始NiCo2O4和商业RuO2,因此在水分解方面具有巨大潜力。