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Electrified interfacial oxygen-down water boosts efficient and durable electrolysis.
Yingying Xu1, Zhaoyang Shi2, Shicheng Zhu2
1Key Laboratory of Clean Chemistry Technology of Guangdong Regular Higher Education Institutions, School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, PR China.
Researchers engineered ruthenium dioxide (RuO2) with an oxygen-down water adlayer (H2O↓) to enhance the oxygen evolution reaction. This strategy optimizes proton transfer, boosting catalytic activity and stability for efficient water splitting.
Area of Science:
- Electrochemistry
- Materials Science
- Catalysis
Background:
- The oxygen evolution reaction (OER) is crucial for water splitting but is limited by proton-coupled electron transfers.
- Mastering interfacial proton dynamics is key to achieving high catalytic activity and long-term stability in OER.
- Current OER catalysts struggle with efficient proton transport and stability due to corrosive intermediates.
Purpose of the Study:
- To develop a novel strategy for optimizing interfacial proton dynamics in OER.
- To engineer a ruthenium dioxide (RuO2) catalyst with enhanced water adlayer orientation for improved performance.
- To investigate the impact of controlled water adlayer structure on OER kinetics and stability.
Main Methods:
- Engineered edge dislocations into RuO2 to create stress fields influencing water adlayer orientation.
- Utilized in situ infrared spectroscopy to confirm the oxygen-down water adlayer (H2O↓) structure and molecular dipole angle.
- Employed computational simulations and electrochemical measurements to analyze proton transport and catalytic activity.
Main Results:
- Successfully established an oxygen-down water adlayer (H2O↓) on RuO2, evidenced by a molecular dipole angle of ~67°.
- The H2O↓ layer formed a rigid hydrogen-bond network, accelerating proton shuttling and preventing acid accumulation.
- Reduced the oxygen formation energy barrier from 2.02 eV to 0.85 eV, leading to a RuO2 catalyst achieving 10 mA cm⁻² at 179 mV overpotential.
Conclusions:
- The engineered H2O↓ adlayer on RuO2 significantly enhances OER activity and stability by optimizing proton dynamics.
- This approach provides a new pathway for designing highly efficient and durable electrocatalysts for water splitting.
- Achieved exceptional catalytic performance (>1,000 hours stability at 10 mA cm⁻² and >720 hours at 1 A cm⁻²) demonstrating practical viability.
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