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钙电池的成就、挑战与前景

Achievements, Challenges, and Prospects of Calcium Batteries.

作者信息

Arroyo-de Dompablo M Elena, Ponrouch Alexandre, Johansson Patrik, Palacín M Rosa

机构信息

Departamento de Química Inorgánica, Universidad Complutense de Madrid, Avda. Complutense sn, 28040 Madrid, Spain.

Institut de Ciència de Materials de Barcelona (ICMAB-CSIC) Campus UAB, 08193 Bellaterra, Catalonia, Spain.

出版信息

Chem Rev. 2020 Jul 22;120(14):6331-6357. doi: 10.1021/acs.chemrev.9b00339. Epub 2019 Oct 29.

DOI:10.1021/acs.chemrev.9b00339
PMID:31661250
Abstract

This Review flows from past attempts to develop a (rechargeable) battery technology based on Ca via crucial breakthroughs to arrive at a comprehensive discussion of the current challenges at hand. The realization of a rechargeable Ca battery technology primarily requires identification and development of suitable electrodes and electrolytes, which is why we here cover the progress starting from the fundamental electrode/electrolyte requirements, concepts, materials, and compositions employed and finally a critical analysis of the state-of-the-art, allowing us to conclude with the particular roadblocks still existing. As for crucial breakthroughs, reversible plating and stripping of calcium at the metal-anode interface was achieved only recently and for very specific electrolyte formulations. Therefore, while much of the current research aims at finding suitable cathodes to achieve proof-of-concept for a full Ca battery, the spectrum of electrolytes researched is also expanded. Compatibility of cell components is essential, and to ensure this, proper characterization is needed, which requires design of a multitude of reliable experimental setups and sometimes methodology development beyond that of other next generation battery technologies. Finally, we conclude with recommendations for future strategies to make best use of the current advances in materials science combined with computational design, electrochemistry, and battery engineering, all to propel the Ca battery technology to reality and ultimately reach its full potential for energy storage.

摘要

本综述源于过去基于钙开发(可充电)电池技术的尝试,通过关键突破,全面讨论了当前面临的挑战。可充电钙电池技术的实现主要需要识别和开发合适的电极和电解质,这就是为什么我们在此从基本的电极/电解质要求、概念、所采用的材料和成分开始介绍进展情况,最后对当前的技术水平进行批判性分析,从而使我们能够得出仍然存在的具体障碍。至于关键突破,直到最近才在非常特殊的电解质配方下实现了钙在金属阳极界面的可逆电镀和脱镀。因此,虽然目前的许多研究旨在寻找合适的阴极以实现全钙电池的概念验证,但所研究的电解质范围也在扩大。电池组件的兼容性至关重要,为确保这一点,需要进行适当的表征,这需要设计大量可靠的实验装置,有时还需要开发超越其他下一代电池技术的方法。最后,我们给出了未来策略的建议,以充分利用材料科学、计算设计、电化学和电池工程方面的当前进展,推动钙电池技术成为现实,并最终充分发挥其储能潜力。

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