High-Entropy Materials Unlock Efficient Catalysis and Electrochemical Reactivity
Researchers at Liaoning University have discovered a unique high-entropy perovskite oxide, LaB5O3, which exhibits exceptional bifunctional electrocatalytic properties. This breakthrough was achieved through crystal phase-engineering, allowing for efficient catalysis and electrochemical reactivity. The research has significant implications for sustainable nitrogen fixation and sulfur recovery in water treatment applications.
Key Takeaways:
- The new high-entropy perovskite oxide, LaB5O3, exhibits a 95.83% Faradaic efficiency (FE) for nitrate reduction (NO3RR) at -0.7 V vs. RHE.
- The material's structural transformation from orthorhombic to cubic symmetry stabilizes the high-spin state of Fe-2(+)/Fe-3(+), enhancing electron density and nitrate adsorption.
- Crystal phase engineering is demonstrated as a viable approach for high-entropy oxides to achieve efficient electrochemical reactivity and catalysis.
- The research was funded by the Australian Research Council and has been peer-reviewed for publication in Advanced Functional Materials.
- LaB5O3 exhibits exceptional stability, with minimal NO2- byproduct (FE of 41.02%) during the nitrate reduction reaction.
- The findings have potential applications in sustainable water treatment, nitrogen fixation, and sulfur recovery.
- The research team, led by Daming Feng from Liaoning University, includes authors Lixue Zhou, Zhiqiang Li, Chunhua Ge, Xiangdong Zhang, Hui Li, and Tianyi Ma.
Statistics:
- 95.83% Faradaic efficiency (FE) for nitrate reduction (NO3RR) at -0.7 V vs. RHE.
- 41.02% Faradaic efficiency (FE) for nitrate reduction (NO3-) during the reaction.
- 95.83% - 41.02% = 54.81% increase in efficiency for nitrate reduction (NO3-) with minimal NO2- byproduct.
- 2025 - the year of publication for the research study.
Sources:
- "High-spin-state Engineering In High-entropy Perovskite Oxides Via Crystal Phase Modulation for Paired Electrochemical Nitrate Reduction and Sulfur Ion Oxidation" - Advanced Functional Materials, 2025.
- Liaoning University - newsrx.com/news/2025-10-20/Study-Results-From-Liaoning-University-Provide-New-Insights-Into-Chemicals-And-Chemistry-High-Spin-State-Engineering-In-High-Entropy-Perovskite-Oxides-Via-Crystal-Phase-Modulation-For-Paired-Electrochemical-Nitrate-Reduction-And-Sulfur-Ion-Oxidation_8664077.html.
- Australian Research Council - arccrn.org.au/.
- Advanced Functional Materials - onlinelibrary.wiley.com/journal/10.1002/(ISSN)1616-3028.