阴极
材料科学
控制重构
氧化物
法拉第效率
电场
纳米技术
扫描透射电子显微镜
光电子学
透射电子显微镜
电荷(物理)
体积热力学
储能
电压
化学工程
电流(流体)
扫描电子显微镜
电极
过渡金属
加速度
吸收(声学)
离子
氧气
传输(电信)
电介质
作者
Jia-Yang Li,Ying Guo,Xin Wang,Wei Kong Pang,Haiyan Hu,Yanfang Zhu,Diancheng Chen,Xin-Yu Liu,Qinfen Gu,Bernt Johannessen,Xiaobo Zheng,Yang Sun,Shaobo Cheng,Yifei Yuan,Chao Jun Wu,Jia-zhao Wang,Shi Xue Dou,Yao Xiao
标识
DOI:10.1038/s41467-026-78040-8
摘要
Abstract Layered oxide cathodes have attracted worldwide attention due to environmentally friendliness, structural diversity, and economic benefits. However, poor long-term cycling and unsatisfactory rate performance hinder the practical application. Hence, an oxide cathode with self-adaptive volume has been designed, achieving stable capacity retention of 82% after 1000 cycles at 2 C. The enhanced long-term performance is attributed to its dynamically adjustable volume reducing the acceleration of stress, enabled by a tunable interlayer distance that expands at the beginning of the charging process and then compresses at the highest voltage. Uniform electric field distribution is depicted by 4-dimensional scanning transmission electron microscopy showing even Coulombic interactions between the oxide layers leading to high mechanical integrity. Such self-adaptable behavior originates from the reduced repulsive force between interlayered oxygen due to the charge reconfiguration of intralayer oxygen and transition metal ions. Additionally, the charge compensation behavior is detected by in situ X-ray absorption spectra, which would be beneficial to high-rate performance. The self-adaptive volume change driven by charge reconfiguration provides a pathway toward durable materials for sustainable sodium-ion energy storage.
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