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Beyond the Limits of Lithium Iron Phosphate: Cutting‐Edge Innovations Toward High Performance and Sustainability for Next‐Generation Batteries

磷酸铁锂 阳极 纳米技术 阴极 储能 材料科学 电气化 锂(药物) 持续性 灵活性(工程) 可扩展性 数码产品 工艺工程 电极 导电体 电压 网格 高效能源利用 计算机科学 钥匙(锁) 能源消耗 电化学 环境科学 电池(电) 可再生能源 电网储能 可持续能源
作者
Ashok Kumar Kakarla,Zarmeena Akhtar,Jongsoon Kim,Moonsu Yoon,Dongsoo Lee,Junghyun Choi
出处
期刊:Interdisciplinary materials [Wiley]
卷期号:4 (6): 812-849 被引量:12
标识
DOI:10.1002/idm2.70024
摘要

ABSTRACT The rapid electrification of transportation and grid systems has placed lithium‐ion batteries (LIBs) at the forefront of energy storage innovation. Lithium iron phosphate (LiFePO 4 , LFP), with its superior safety, long cycle life, and cost advantages, has become a cornerstone cathode material. However, the limited energy density (ED), attributed to its relatively low nominal voltage (~3.2 V) and moderate specific capacity (~170 mAh g −1 ), hinders its competitiveness in high‐energy applications. Furthermore, electrochemical characteristics related to poor charge transfer kinetics and material circularity also limit its overall value. This review highlights recent advances in material design, electrode engineering, and system‐level optimization aimed at overcoming these challenges. Key strategies include precision doping, multifunctional coating, and nanostructuring to enhance conductivity and rate performance, development of high‐tap‐density powders and ultra‐thick electrodes for improved ED, and hierarchical electrode architectures and advanced conductive networks for efficient ion/electron transport. Additional focus is given to low‐temperature performance, scalable and sustainable synthesis routes, and recycling pathways that ensure long‐term environmental viability. Emerging directions such as dry electrode processing, solid‐state integration, and artificial intelligence/machine learning‐driven optimization are also discussed as transformative tools for accelerating LFP innovation. By integrating these multidisciplinary strategies, LFP can evolve from a safe and stable cathode into a high‐performance, sustainable solution for electric vehicles, grid storage, and next‐generation energy systems.
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