Rui Li, Bing-Bing Chen, Hui Li, Hai-Yan Hu, Jian Xiong, Yong-Gang Sun, Yi-Feng Liu, Xiao-Bo Zheng, Yan-Fang Zhu, Yao Xiao
P2-type layered oxides are considered promising cathode materials for sodium-ion batteries owing to their high capacity potential and suitable operating voltage. However, their practical application is still limited by sluggish Na+ transport kinetics and insufficient long-term cycling stability. Herein, we propose a macro-to-micro structural regulation strategy that links microstructural design and facet regulation with local Na+/vacancy disordering. As a result, primary particles with a high proportion of exposed {010} active facets are closely packed and further assembled into a dense and uniform spherical secondary-particle architecture, thereby improving interparticle contact and preserving structural integrity. Meanwhile, local Na+/vacancy disordering facilitates Na+ extraction/insertion and improves Na+ transport kinetics, contributing to smoother charge/discharge profiles. Benefiting from this strategy, the P2-Na2/3Ni0.3Mn0.7O2 cathode prepared at 950 °C exhibits a high capacity retention of 94.06% after 300 cycles at 1C while maintaining a well-preserved particle morphology after cycling. Furthermore, selected-area electron diffraction, in situ X-ray diffraction, and focused ion beam analyses demonstrate that the optimized cathode possesses a locally disordered Na+/vacancy configuration, undergoes reversible P2 structural evolution, and maintains well-preserved particle integrity during cycling. This work highlights the synergistic correlation among secondary-particle architecture, primary-particle facet regulation, and local Na+/vacancy disordering, providing new insights into the rational design of high-performance P2-type layered oxide cathodes with enhanced Na+ transport kinetics and structural stability.