普鲁士蓝
材料科学
电极
过渡金属
吸附
金属
化学工程
电镀(地质)
空位缺陷
锂(药物)
电池(电)
二极管
电压
纳米技术
无机化学
热的
光电子学
降级(电信)
高压
作者
Chongwei Gao,Ming Chen,Jiantao Li,Sungsik Lee,Tian Sun,Xunan Wang,Shuhua Zhang,Guang Feng,Dengyun Zhai,Feiyu Kang
标识
DOI:10.1038/s41467-025-65250-9
摘要
The simultaneous achievement of fast-charging and high specific capacity remains a critical challenge for lithium-ion battery negative electrodes. Here we report a layered manganese-based Prussian blue analogue, synthesized through vacancy control and subsequent thermal transformation. As a conversion-type negative electrode, this material exhibits high-rate performance, delivering a specific capacity of 510 mAh g−1 at a specific current of 8 A g−1, and operates at a moderate average voltage of approximately 1.2 V vs. Li/Li+, which mitigates lithium plating risks. This high-rate capability stems from the analogue’s specific linkage configurations, which facilitate a high content of active transition metal and strong Li+ adsorption at nitrogen sites. The high transition metal content enables a high reversible capacity, while strong Li+ adsorption promotes an efficient initial crystalline-to-amorphous transformation. This process induces dynamically reversible component migration during subsequent cycling, thereby enhancing conversion reaction kinetics. Our findings provide insights into the application of Prussian blue analogues as fast-charging negative electrode materials. The development of fast-charging and high-capacity negative electrodes is critical for advanced lithium-ion batteries. Here, authors use a vacancy engineering strategy to develop a layered Prussian blue analogue with competitive rate capability, delivering a specific capacity of 510 mAh g−1 at a specific current of 8 A g−1.
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