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首页> 外文期刊>Electrochemical Energy Reviews >Design Principle, Optimization Strategies, and Future Perspectives of Anode-Free Configurations for High-Energy Rechargeable Metal Batteries
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Design Principle, Optimization Strategies, and Future Perspectives of Anode-Free Configurations for High-Energy Rechargeable Metal Batteries

机译:设计原则,优化策略,未来的视角Anode-Free配置对金属高能可充电电池

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Metal anodes (e.g., lithium, sodium and zinc metal anodes) based on a unique plating/stripping mechanism have been well recognized as the most promising anodes for next-generation high-energy metal batteries owing to their superior theoretical specific capacities and low redox potentials. However, realizing full utilization and the theoretical capacity of metal anodes remains challenging because of their high reactivity, poor reversibility, and nonplanar metal evolution patterns, which lead to irreversible loss of active metals and the electrolyte. To minimize the above issues, excess metal sources and flooded electrolytes are generally used for laboratory-based studies. Despite the superior cycling performance achieved for these cells, the metal-anode-excess design deviates from practical applications due to the low anode utilization, highly inflated coulombic efficiency, and undesirable volumetric capacity. In contrast, anode-free configurations can overcome these drawbacks while reducing fabrication costs and improving cell safety. In this review, the significance of anode-free configurations is elaborated, and different types of anode-free cells are introduced, including reported designs and proposed feasible yet unexplored concepts. The optimization strategies for anode-free lithium, sodium, zinc, and aluminum metal batteries are summarized. Most importantly, the remaining challenges for extending the cycle life of anode-free cells are discussed, and the requirements for anode-free cells to reach practical applications are highlighted. This comprehensive review is expected to draw more attention to anode-free configurations and bring new inspiration to the design of high-energy metal batteries. Graphic Abstract Anode-free metal batteries can deliver higher energy densities than traditional anode-excess metal batteries and metal-ion batteries. Yet the cycle life of anode-free cells is limited by the non-planar growth and low coulombic efficiency of the metal anodes. In this review, we not only systematically elaborate the working/failure mechanisms and achieved progress for the reported anode-free Li/Na/Zn/Al battery systems, but also propose a series of conceptually-feasible yet unexplored anode-free systems.
机译:金属阳极(如锂、钠、锌金属阳极)基于一个独特的镀/剥离机制已经被公认为最有前途的阳极下一代高能金属由于其优越的电池理论具体的能力和较低的氧化还原潜力。和金属阳极的理论能力仍然是具有挑战性的,因为他们的高反应性、可逆性差和空间的金属进化模式,导致的活性金属和不可逆转的损失电解液。金属来源和淹水电解质通常用于实验室研究。尽管取得了优越的循环性能对于这些细胞,metal-anode-excess设计由于偏离实际的应用程序阳极利用率低、高度膨胀的库仑效率,不受欢迎的体积容量。相比之下,anode-free配置克服这些缺点,同时减少制造成本和提高电池的安全。这篇评论,anode-free的重要性阐述了配置,不同的类型介绍了anode-free细胞,包括设计和提出可行的报道未知的概念。anode-free锂、钠、锌、和铝金属电池进行了总结。重要的是,剩下的挑战延长anode-free电池的循环寿命讨论,anode-free的要求细胞达到实际应用突出显示。预计将吸引更多注意anode-free配置和带来新的灵感高能金属电池的设计。文摘Anode-free金属电池可以交付更高的能量密度比传统anode-excess金属电池和金属离子电池。受限于non-planar增长和低库仑效率的金属阳极。审查,我们不仅系统阐述工作/失败机制,取得了进展报道anode-free李/ Na /锌/铝电池系统,但也提出了一系列的conceptually-feasible还未知anode-free系统。

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