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◆ Journal of the American Chemical Society2026-01-20· Overpotential

Enhancing Energy Conversion Efficiency and Suppression of Side Reactions in Li-O <sub>2</sub> Batteries through a Magnetic Field Strategy

Hang Li, Kang Shen, Jianli Zhang, Min Wu, Haibo Chen, Qiang Chen, Guangya Hou, Junxiu Wu, Jun Lu, Yiping Tang

原始摘要(英文原文)· Original abstract
Enhancing the energy conversion efficiency of lithium-oxygen batteries remains a significant challenge. Side reactions and slow transfers of Li +, O 2, and electrons cause the accumulation of insoluble byproducts on the cathode, leading to high discharge overpotentials and limited reversibility. In this study, the authors introduce a magnetic field to address these issues. Applying an external magnetic field to ferromagnetic catalysts significantly reduces the overpotential to only 0.57 V at 200 mA/g, while maintaining exceptional rate performance and cycle stability. In-situ characterization experiments demonstrate effective suppression of byproducts, primarily Li 2 CO 3 . Theoretical calculations further reveal that the magnetic field stabilizes highly reactive singlet oxygen within the battery system, inhibiting the byproduct formation pathways. Furthermore, the magnetic field plays a crucial role in promoting the decomposition of discharge products and Li + mass transfer. Together, these effects minimize polarization and improve energy transfer efficiency, offering a versatile strategy for advanced metal-air batteries.
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Enhancing Energy Conversion Efficiency and Suppression of Side Reactions in Li-O <sub>2</sub> Batteries through a Magnetic Field Strategy — 科研速览 Science Skim