Zhao Shengyu, Ning Fanghua, Yu Xuan, Guo Baiyu, Teófilo Reinaldo F, Huang Jianyu, Shi Qinhao, Wu Shuang, Feng Wuliang, Zhao Yufeng
Institute for Sustainable Energy & College of Science, Shanghai University, Shanghai, 200444, China.
Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao, 066004, China.
Angew Chem Int Ed Engl. 2025 Jan 21;64(4):e202416290. doi: 10.1002/anie.202416290. Epub 2024 Nov 13.
O3-type layered oxides are highly promising cathodes for sodium-ion batteries (SIBs), however they undergo complex phase transitions and exhibit high sensibility to air, leading to subpar cycling performance and commercial viability. In this work, we report a layered cathode material (NaNiCuMgLiMnTiSnO) with a sate-of-the-art high-entropy compositional design. We unveil that such a configuration featuring inhomogeneous coordination environment of transition metal (TM) elements, can enable enhanced gliding energy (-0.38 vs -0.58 eV) of TMO slabs upon desodiation both theoretically and experimentally, which underlies the fundamental origin of the outstanding structural stability of HEO materials. As a consequence, the complex phase transitions (O3-O'3-P3-P'3-P3'-O3') of conventional O3-type cathode have been eliminated, and the as-obtained material demonstrates exceptional structural robustness and integrity with an ultra-long cycle life in a quasi-solid-state cell (maintaining 73.2 % capacity after 1000 cycles at 2 C). Moreover, the material presents satisfactory air stability, with minimal structural and electrochemical degradation when directly exposed to the air. An Ah-scale pouch cell based on the cathode material is constructed, demonstrating a capacity retention of 83.6 % after 500 cycles, signaling substantial promise for commercial applications.
O3型层状氧化物是极具前景的钠离子电池(SIBs)正极材料,然而它们会经历复杂的相变,并且对空气表现出高敏感性,导致循环性能和商业可行性欠佳。在这项工作中,我们报道了一种采用最先进的高熵成分设计的层状正极材料(NaNiCuMgLiMnTiSnO)。我们揭示,这种具有过渡金属(TM)元素不均匀配位环境的结构,在理论和实验上都能使脱钠时TMO板的滑动能增强(-0.38对-0.58 eV),这是高熵氧化物(HEO)材料卓越结构稳定性的根本来源。因此,传统O3型正极的复杂相变(O3 - O'3 - P3 - P'3 - P3' - O3')被消除,所得到的材料表现出卓越的结构稳健性和完整性,在准固态电池中具有超长循环寿命(在2 C下1000次循环后保持73.2%的容量)。此外,该材料具有令人满意的空气稳定性,直接暴露于空气中时结构和电化学降解最小。基于该正极材料构建了一个Ah级软包电池,在500次循环后容量保持率为83.6%,显示出巨大的商业应用前景。