材料科学
储能
八面体
锂(药物)
自行车
体积热力学
离子
体积膨胀
压力(语言学)
复合材料
热力学
化学
物理
医学
历史
功率(物理)
语言学
哲学
有机化学
考古
内科学
内分泌学
作者
Yinjun Ou,Liting Yang,Jiazhe Gao,Songjie Li,Xuehua Liu,Yifeng Cheng,Jincang Zhang,Limin Wu,Chunfu Lin,Renchao Che
标识
DOI:10.1002/adfm.202305329
摘要
Abstract Ultra‐long‐life (at least 10 000 cycles) lithium‐ion batteries are very effective for stationary energy‐storage applications. However, even “zero‐strain” materials with small unit‐cell‐volume changes of <1% cannot last for ultra‐long cycles due to gradually accumulated intracrystal strain/stress. Here, Li[Li 0.2 Cr 0.4 Ti 1.4 ]O 4 is explored as the first absolutely‐zero‐expansion material with unit‐cell‐volume variations of zero during Li + storage. Its absolutely‐zero‐expansion mechanism is intensively studied, revealing that 16 c ‐octahedron shrinkage fully offsets 16 d ‐octahedron expansion through reversible O 2− movement. It delivers better cycling stability than, as far as we know, all electrochemical energy‐storage materials previously reported. Its capacity retention at 10 C and 1.0 mg cm −2 after 17 000 cycles reaches 91.5%. When the active‐material loading significantly increases to 6.4 mg cm −2 , its capacity retention at 5 C after 500 cycles reaches 95.7%. At an elevated temperature of 45 °C, it not only keeps excellent cycling stability but also exhibits significantly enhanced rate capability. Therefore, Li[Li 0.2 Cr 0.4 Ti 1.4 ]O 4 is especially suitable for stationary energy storage.
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