A Li metal-SiO x hybrid anode enabling synergistic plating/alloying dual-mechanism lithium storage
Chaohui Zhang, Juan Zhang, Yu-Hao Wang, Shuang‐Jie Tan, Yu‐Jie Guo, Jun‐Chen Guo, Xiaoxi Luo, Jian-Song Wu 等 11 位
Chinese Academy of Sciences Beijing National Laboratory for Molecular Sciences University of Chinese Academy of Sciences
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摘要与影响
Balancing specific energy and cycle durability remains a critical challenge for practical battery systems, as conventional single-mechanism anodes struggle to optimize both simultaneously. Here, we engineer a symbiotic Li-SiO x hybrid anode enabling spatiotemporally coordinated Li metal plating and Li-ion alloying. The preferential lithiated Li x Si forms a Li + -conductive network, guiding and confining lithium nucleation beneath the SiO x layer. This precise control over Li plating replenishes active lithium inventory, stabilizing electrochemical reactions and minimizing Li loss. When paired with a LiNi 0.8 Co 0.1 Mn 0.1 O 2 cathode (4 milliampere-hours per square centimeter), the full cell achieves 50% higher specific energy than SiO x -based lithium-ion batteries while retaining 80% capacity after 900 cycles at a lean negative/positive ratio of 1.5, outperforming state-of-the-art Li-ion and Li-metal battery systems. A pouch cell exhibits stable cycling over 600 cycles at 0.5C, validating its practicality. Our findings pioneered a universal hybrid anode design paradigm with coupled reaction mechanisms, effectively addressing the longstanding energy durability trade-off in next-generation batteries.
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工程Advancements in Battery Materials
Advanced Battery Materials and Technologies · Advanced Battery Technologies Research
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