Li Ruizhe, Dong Wujie, Pan Jun, Huang Fuqiang
State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, 100049, China.
Small Methods. 2021 Nov;5(11):e2100765. doi: 10.1002/smtd.202100765. Epub 2021 Oct 4.
The transition metal oxides (TMOs) with high volumetric capacities are promising anodes for the future electronics, however, they usually suffer from severe capacity decay and poor rate capability. Carbon hybridization and nanosizing can resolve these challenges, yet these significantly compromise the volumetric capacity. Herein, both high capacity and long cycling stability are simultaneously achieved in the micrometer-sized Mo-based oxide particles by designing the dual conductive MoO /β-MoO mosaics. The rational combination of the highly electronically conductive MoO with the highly ionically conductive and open-structured β-MoO achieves a promising volumetric capacity of 1742 mAh cm , which is four times higher than the commercial graphite. Simultaneously, both stable cycling performance (87% retention after 500 cycles) and excellent rate capability (outperformed a majority of the MoO -based anodes reported in literature) are obtained in the lithium-ion batteries. For the sodium-ion batteries, the composite exhibits three times higher Na storage than pure MoO . Moreover, the decisive role of the bond energy on the electrochemical performance of TMOs is also identified. This study may open up new perspectives for choosing and designing the TMO anodes with a high volumetric capacity for the practical applications.
具有高体积容量的过渡金属氧化物(TMOs)是未来电子产品中很有前景的阳极材料,然而,它们通常会遭受严重的容量衰减和较差的倍率性能。碳杂化和纳米尺寸化可以解决这些挑战,但这会显著降低体积容量。在此,通过设计双导电的MoO /β-MoO 镶嵌结构,在微米级的钼基氧化物颗粒中同时实现了高容量和长循环稳定性。高电子导电性的MoO 与高离子导电性且结构开放的β-MoO 的合理组合实现了1742 mAh cm 的有前景的体积容量,这是商业石墨的四倍。同时,在锂离子电池中获得了稳定的循环性能(500次循环后保持87%)和优异的倍率性能(优于文献报道的大多数基于MoO 的阳极)。对于钠离子电池,该复合材料的钠存储量比纯MoO 高三倍。此外,还确定了键能对TMOs电化学性能的决定性作用。这项研究可能为选择和设计具有高体积容量的TMO阳极用于实际应用开辟新的视角。