Bifunctional Photocatalyst for High Performance Photo-assisted Li-O2 Battery
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Technology Overview
This invention enhances photo-assisted Li-O₂ batteries by modulating Li₂O₂ growth through crystal facet engineering of WO₃ photocathodes. The optimized facet improves surface growth, charge dynamics, and oxidation ability, achieving ultra low polarization (0.07 V) and stable cycling performance (100 cycles at 0.04 mA cm⁻²), paving the way for advanced metal-air battery designs.
High-Efficiency Photo-Assisted Li–O₂ Battery
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Ultra-Low Polarization Performance:
Reduces charging overpotential and improves overall energy efficiency
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Stable & Controlled Cycling:
100 stable cycles at 0.04 mA cm⁻², controlled Li₂O₂ thin-film growth. Suppresses bulk insulating by-product formation
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Crystal Facet Engineering Advantage:
Enhances surface growth and oxidation ability. Improves charge transfer dynamics
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Platform for Advanced Metal-Air Batteries:
Applicable to Li–O₂ and other metal-air systems. Supports next-generation high-energy-density battery design
Maritime Use Cases

This technology’s high-capacity, ultra-low polarization battery can significantly extendthe range and efficiency of electric ships, enabling longer voyages without frequent recharging.

Floating offshore wind farms can use these high-performance Li-O₂ batteries to store surplus energy, ensuring continuous power availability in variable wind conditions.

The high energy density and stability of these batteries make them ideal for AUVs (Autonomous Underwater Vehicles) and underwater drones, enhancing deep-sea exploration and environmental monitoring.
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