Lei Wang, Jiaqing Wang, Yifei Lu, Suqiao Fang, Chao Yang, Xingqiao Wu, Yao Xiao, Yong Wang, Shulei Chou and Shuangqiang Chen
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引用次数: 0
Abstract
Compared with the costly and toxic LiCoO2 cathode in lithium-ion batteries (LIBs), nickel-based layered oxide (NLO) cathode materials exhibit the advantages of high capacity, natural abundance, environment-friendliness, and low cost, displaying tremendous application potentials in power batteries for automobiles and aircrafts. This review comprehensively introduces the challenges faced by NLO cathode materials in all alkali-ion batteries (AIBs) in their material synthesis, cation mixing, particle cracking, phase changes, cation dissolution of Mn, and oxygen loss Various strategies, including heteroatom doping, surface coating, and concentration gradient, are applied to tackle these problems by developing layered LiNi1−xMxO2 (M: metal; 0 < x < 1) and LiNixCoyMnzO2 (x + y + z = 1) materials. The successful commercial application of NLO cathode materials in LIBs has further driven their developments in sodium/potassium-ion batteries via the synthesis of (Na/K)Ni1−xMxO2. Moreover, many sophisticated techniques, including in situ X-ray diffraction, scanning/transmission electron microscopy, operando neutron diffraction, and elemental analysis, are used to simultaneously monitor real-time phase changes, lattice variations, structural distortions, and elemental dissolutions of NLO-based materials. Furthermore, density functional theory (DFT) calculations are discussed as a powerful tool for predicting structural evolution, energy band structures, optimal doping concentrations, and ion diffusion pathways, thereby guiding the reasonable design of these materials. Finally, this review provides perspectives on future research directions and modification strategies for NLO cathode materials in AIBs, aiming to accelerate their deployment in electric vehicles and other energy storage devices. These efforts are expected to contribute significantly to the advancement of sustainable energy technologies and the global pursuit for carbon neutrality.
与锂离子电池(LIBs)中昂贵且有毒的LiCoO2正极材料相比,镍基层状氧化物(NLO)正极材料具有容量大、天然丰度高、环境友好、成本低等优点,在汽车和飞机动力电池中具有巨大的应用潜力。本文全面介绍了碱离子电池(AIBs)中NLO正极材料在材料合成、阳离子混合、颗粒开裂、相变、Mn的阳离子溶解和氧损失等方面所面临的挑战。采用杂原子掺杂、表面涂层和浓度梯度等策略,通过制备层状LiNi1-xMxO2 (M: metal;0 < x < 1)和LiNixCoyMnzO2 (x + y + z = 1)材料。NLO正极材料在锂离子电池中的成功商业应用,通过(Na/K)Ni1-xMxO2的合成,进一步推动了其在钠/钾离子电池中的发展。此外,许多复杂的技术,包括原位x射线衍射、扫描/透射电子显微镜、operando中子衍射和元素分析,被用来同时监测nlo基材料的实时相变、晶格变化、结构畸变和元素溶解。此外,密度泛函理论(DFT)计算是预测结构演变、能带结构、最佳掺杂浓度和离子扩散路径的有力工具,从而指导这些材料的合理设计。最后,本文对aib中NLO正极材料的未来研究方向和改进策略进行了展望,旨在加速其在电动汽车和其他储能设备中的应用。预计这些努力将对可持续能源技术的进步和全球对碳中和的追求作出重大贡献。
期刊介绍:
Chemical Society Reviews is published by: Royal Society of Chemistry.
Focus: Review articles on topics of current interest in chemistry;
Predecessors: Quarterly Reviews, Chemical Society (1947–1971);
Current title: Since 1971;
Impact factor: 60.615 (2021);
Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences