Materials Science Division, Argonne National Laboratory, 9700 Cass Ave, Argonne, IL 60439 (USA).
Angew Chem Int Ed Engl. 2014 Dec 15;53(51):14016-21. doi: 10.1002/anie.201406455. Epub 2014 Oct 8.
The methods used to improve catalytic activity are well-established, however elucidating the factors that simultaneously control activity and stability is still lacking, especially for oxygen evolution reaction (OER) catalysts. Here, by studying fundamental links between the activity and stability of well-characterized monometallic and bimetallic oxides, we found that there is generally an inverse relationship between activity and stability. To overcome this limitation, we developed a new synthesis strategy that is based on tuning the near-surface composition of Ru and Ir elements by surface segregation, thereby resulting in the formation of a nanosegregated domain that balances the stability and activity of surface atoms. We demonstrate that a Ru0.5Ir0.5 alloy synthesized by using this method exhibits four-times higher stability than the best Ru-Ir oxygen evolution reaction materials, while still preserving the same activity.
用于提高催化活性的方法已经成熟,然而,阐明同时控制活性和稳定性的因素仍然缺乏,特别是对于氧析出反应(OER)催化剂。在这里,通过研究具有良好特性的单金属和双金属氧化物的活性和稳定性之间的基本联系,我们发现活性和稳定性之间通常存在反比关系。为了克服这一限制,我们开发了一种新的合成策略,该策略基于通过表面偏析来调节 Ru 和 Ir 元素的近表面组成,从而形成纳米分离的畴,从而平衡表面原子的稳定性和活性。我们证明,通过这种方法合成的 Ru0.5Ir0.5 合金比最好的 Ru-Ir 氧析出反应材料具有高出四倍的稳定性,同时仍保持相同的活性。