Intergrating Hollow Multishelled Structure and High Entropy Engineering toward Enhanced Mechano-Electrochemical Properties in Lithium Battery

IF 27.4 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Xuefeng Liu, Yingjie Yu, Kezhuo Li, Yage Li, Xiaohan Li, Zhen Yuan, Hang Li, Haijun Zhang, Mingxing Gong, Weiwei Xia, Yaping Deng, Wen Lei
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Abstract

Hollow multishelled structures (HoMSs) are attracting great interest in lithium-ion batteries as the conversion anodes, owing to their superior buffering effect and mechanical stability. Given the synthetic challenges, especially elemental diffusion barrier in the multimetal combinations, this complex structure design has been realized in low- and medium-entropy compounds so far. It means that poor reaction reversibility and low intrinsic conductivity remain largely unresolved. Here, a hollow multishelled (LiFeZnNiCoMn)3O4 high entropy oxide (HEO) is developed through integrating molecule and microstructure engineering. As expected, the HoMS design exhibits significant targeting functionality, yielding satisfactory structure and cycling stability. Meanwhile, the abundant oxygen defects and optimized electronic structure of HEO accelerate the lithiation kinetics, while the retention of the parent lattice matrix enables reversible lithium storage, which is validated by rigorous in situ tests and theoretical simulations. Benefiting from these combined properties, such hollow multishelled HEO anode can deliver a specific capacity of 967 mAh g−1 (89% capacity retention) after 500 cycles at 0.5 A g−1. The synergistic lattice and volume stability showcased in this work holds great promise in guiding the material innovations for the next-generation energy storage devices.

Abstract Image

将中空多壳结构与高熵工程相结合,提高锂电池的机械电化学性能
中空多壳结构(HoMS)因其卓越的缓冲作用和机械稳定性,在锂离子电池的转换阳极中一直备受关注。考虑到合成方面的挑战,尤其是多金属组合中的元素扩散障碍,这种复杂的结构设计迄今只能在低熵和中熵化合物中实现。这意味着反应可逆性差和内在导电性低的问题在很大程度上仍未得到解决。在这里,我们通过整合分子和微结构工程,开发了一种中空多壳(锂铁锌镍钴锰)3O4 高熵氧化物(HEO)。正如预期的那样,HoMS 设计表现出显著的靶向功能,具有令人满意的结构和循环稳定性。同时,HEO 中丰富的氧缺陷和优化的电子结构加速了锂化动力学,而母体晶格基质的保留实现了可逆锂存储,这一点通过严格的原位测试和理论模拟得到了验证。得益于这些综合特性,这种中空多壳 HEO 阳极在 0.5 A g-1 的条件下循环 500 次后,比容量可达 967 mAh g-1(容量保持率 89%)。这项工作所展示的协同晶格和体积稳定性为指导下一代储能设备的材料创新带来了巨大希望。
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来源期刊
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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