A Perovskite Oxide Optimized for Oxygen Evolution Catalysis from Molecular Orbital Principles
Massachusetts Institute of Technology
Abstract
The efficiency of many energy storage technologies, such as rechargeable metal-air batteries and hydrogen production from water splitting, is limited by the slow kinetics of the oxygen evolution reaction (OER). We found that Ba(0.5)Sr(0.5)Co(0.8)Fe(0.2)O(3-δ) (BSCF) catalyzes the OER with intrinsic activity that is at least an order of magnitude higher than that of the state-of-the-art iridium oxide catalyst in alkaline media. The high activity of BSCF was predicted from a design principle established by systematic examination of more than 10 transition metal oxides, which showed that the intrinsic OER activity exhibits a volcano-shaped dependence on the occupancy of the 3d electron with an e(g) symmetry of…
Citation impact
- FWCI
- 46.40
- Percentile
- 100%
- References
- 28
Authors
5Topics & keywords
- Perovskite (structure)
- Catalysis
- Oxide
- Oxygen evolution
- Molecular orbital
- Oxygen
- Molecular oxygen
- Complex oxide
- Affordable and clean energy