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