ACS Applied Materials & Interfaces · 2019 · 44 citations · 38 references
Layered manganese-based cathode materials are of great interest because of their high specific capacities for sodium-ion batteries. However, the Jahn-Teller effect and the inevitable phase transition are detrimental for achieving considerable cycling stability and rate capability. Herein, a P2-type manganese oxide nanoplate cathode material modified by Mo-substitution with an oriented stacking structure and exposed {010} active facets is reported. The manganese oxide nanoplate cathode yields remarkable capacity retention of 86% after 1200 cycles at 10 C (2000 mA g<sup>-1</sup>). The specific power density is estimated to be as high as 530 W kg<sup>-1</sup> with a specific discharge capacity 143.9 mA h g<sup>-1</sup> at 1 C and 89.6% capacity retention up to 100 cycles. The superior electrochemical performances can be attributed to the efficient chemical modification and the unique structural features of the present manganese oxide nanoplate. Mo-modification can endow the manganese oxide cathode with enlarged lattice space and average oxidation state and thus favorable Na<sup>+</sup> diffusion to inhibit the Jahn-Teller effect and improve the structure stability, thereby achieving an extremely long cycling life. A multilayer oriented stacking nanoplate structure with exposed {010} active facets is also beneficial for providing more surface active sites and shortening the Na<sup>+</sup> diffusion path, leading to better rate capability.
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Recent Advances and Prospects of Cathode Materials for Sodium‐Ion Batteries
Xingde Xiang, Kai Zhang, Jun Chen · Advanced Materials · 2015 · 1.1K citations
Recent Progress in Electrode Materials for Sodium‐Ion Batteries
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