材料科学
阴极
无定形固体
纳米结构
灵活性(工程)
纳米技术
工程物理
电化学
吸附
无定形碳
各向同性
空隙(复合材料)
化学工程
表面扩散
格子(音乐)
化学物理
作者
Shuhan Jin,Fan Xue,He Zhu,Junjun Wang,Guangwan Zhang,Haoqing Ma,Jiang Liang,Lianmeng Cui,Xia Wang,Ruohan Yu,Lei Zhang,Qinyou An
标识
DOI:10.1002/adma.202512407
摘要
Calcium-ion batteries (CIBs) offer a promising candidate within multivalent-ion batteries (MVIBs), but their advancement is impeded by the lack of cathode materials capable of efficiently accommodating large Ca2+ with rapid kinetics. Here, this study demonstrates how amorphous FePOx effectively liberates Ca2+ storage from such lattice restrictions by virtue of its inherently disordered and flexible framework, unveiling an adaptive storage mechanism in two distinct yet correlated aspects. First, its amorphous network not only revives electrochemical activity but also provides more open and isotropic ion transport pathways compared to rigid crystalline structures, enabling superior internal Ca2+ accommodation and yielding the optimal Ca2+ diffusion coefficient (3.24 × 10-9 cm2 s-1) among the current CIBs inorganic cathode materials. Then, this inherent structural flexibility within the amorphous network further enables dynamic surface self-optimization process of amorphous FePOx via void migration from Ca2+ extraction. The evolving surface morphology provides more Ca2+ adsorption sites, enhancing decalciation/calciation kinetics. This synergistic adaptation yields a high capacity (124.3 mAh g-1 at 20 mA g-1), exceptional cyclability (92.1 mAh g-1 at 100 mA g-1 after 1000 cycles), and high rate (≈76% retention rate when increasing from 20 to 300 mA g-1), demonstrating the broad advantages of amorphous architectures for advanced MVIBs.
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