Efficient Ternary Mn-Based Spinel Oxide with Multiple Active Sites for Oxygen Evolution Reaction Discovered via High-Throughput Screening Methods.
Mahmoud Gamal AhmedYing Fan TayXiao ChiMengyuan ZhangJoel Ming Rui TanSing Yang ChiamAndrivo RusydiLydia Helena WongPublished in: Small (Weinheim an der Bergstrasse, Germany) (2022)
The discovery of more efficient and stable catalysts for oxygen evolution reaction (OER) is vital in improving the efficiency of renewable energy generation devices. Given the large numbers of possible binary and ternary metal oxide OER catalysts, high-throughput methods are necessary to accelerate the rate of discovery. Herein, Mn-based spinel oxide, Fe 10 Co 40 Mn 50 O, is identified for the first time using high-throughput methods demonstrating remarkable catalytic activity (overpotential of 310 mV on fluorine-doped tin oxide (FTO) substrate and 237 mV on Ni foam at 10 mA cm -2 ). Using a combination of soft X-ray absorption spectroscopy and electrochemical measurements, the high catalytic activity is attributed to 1) the formation of multiple active sites in different geometric sites, tetrahedral and octahedral sites; and 2) the formation of active oxyhydroxide phase due to the strong interaction of Co 2+ and Fe 3+ . Structural and surface characterizations after OER show preservation of Fe 10 Co 40 Mn 50 O surface structure highlighting its durability against irreversible redox damage on the catalytic surface. This work demonstrates the use of a high-throughput approach for the rapid identification of a new catalyst, provides a deeper understanding of catalyst design, and addresses the urgent need for a better and stable catalyst to target greener fuel.
Keyphrases
- metal organic framework
- high throughput
- single cell
- visible light
- room temperature
- highly efficient
- ionic liquid
- high resolution
- gold nanoparticles
- small molecule
- transition metal
- oxidative stress
- reduced graphene oxide
- oxide nanoparticles
- electron transfer
- magnetic resonance imaging
- single molecule
- positron emission tomography
- magnetic resonance
- pet imaging
- pet ct
- liquid chromatography
- structural basis