Guo Xuelin, Ding Yu, Yu Guihua
Materials Science and Engineering Program, Texas Materials Institute, The University of Texas at Austin, Austin, TX, 78712, USA.
Adv Mater. 2021 Jul;33(29):e2100052. doi: 10.1002/adma.202100052. Epub 2021 Jun 4.
Increasing need for the renewable energy supply accelerated the thriving studies of Li-ion batteries, whereas if the high-energy-density Li as well as alkali metals should be adopted as battery electrodes is still under fierce debate for safety concerns. Recently, a group of low-melting temperature metals and alloys that are in liquid phase at or near room-temperature are being reported for battery applications, by which the battery energy could be improved without significant dendrite issue. Besides the dendrite-free feature, liquid metals can also promise various high-energy-density battery designs on the basis of unique materials properties. In this review, the design principles for liquid metals-based batteries from mechanical, electrochemical, and thermodynamical aspects are provided. With the understanding of the theoretical basis, currently reported relevant designs are summarized and analyzed focusing on the working mechanism, effectiveness evaluation, and novel application. An overview of the state-of-the-art liquid metal battery developments and future prospects is also provided in the end as a reference for further research explorations.
对可再生能源供应的需求不断增加,加速了锂离子电池的蓬勃研究,然而,对于是否应采用高能量密度的锂以及碱金属作为电池电极,由于安全问题仍在激烈争论中。最近,有报道称一组在室温或接近室温下呈液相的低熔点金属和合金可用于电池应用,通过这种方式可以在不出现明显枝晶问题的情况下提高电池能量。除了无枝晶特性外,液态金属还可以基于独特的材料特性实现各种高能量密度的电池设计。在这篇综述中从机械、电化学和热力学方面提供了基于液态金属的电池的设计原则。在理解理论基础的情况下,总结并分析了目前报道的相关设计,重点关注其工作机制、有效性评估和新颖应用。最后还概述了液态金属电池的最新发展情况和未来前景,以供进一步的研究探索参考。