Sub‐Monolayer Wrapping Stabilizes Magnesium Ion Cathode
Xuelian Qu, Fei Zhang, Tianyi Gao, Yutong Luo, Kangrui Sun, Honghao Huang, Tong Zhang, Ziyue Li 等 11 位
Fudan University Anhui University
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摘要与影响
Rechargeable magnesium batteries (RMBs) hold promise as next‐generation energy storage systems, owing to their high volumetric capacity, high safety, and abundance of Mg. However, their development is hindered by sluggish Mg ion (Mg 2+ ) diffusion and cathode instability, especially polysulfide and transition metal dissolution. While ultrathin protection layers offer distinct advantages over conventional bulk coatings, their synthesis remains a significant challenge. Herein, we wrap a sub‐monolayer MoS 2 on Cu 1.81 S cathode, where MoS 2 layer acts as a functional interface that regulates the local chemical environment and suppresses cathode dissolution. MoS 2 layer also plays an activation role by facilitating Mg adsorption and reducing migration barriers, thereby accelerating storage kinetics. Benefiting from this synergistic design, Cu 1.81 S@MoS 2 cathode exhibits enhanced cycling stability and rate performance. It delivers around 246 mAh/g after 200 cycles at 100 mA/g with a low fading rate (0.057% per cycle), maintaining around 107 mAh/g after 600 cycles at 400 mA/g with 99.1% coulombic efficiency (CE). Furthermore, with the MoS 2 layer, the cathode shows excellent rate capability with 106 mAh/g at 1000 mA/g and full recovery at 20 mA/g. This work highlights a feasible nanostructuring strategy to stabilize conversion‐type cathodes to advance high‐performance RMBs.
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工程Advancements in Battery Materials
Magnesium Alloys: Properties and Applications · Magnesium Oxide Properties and Applications
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