Sodium Polymer Electrolytes: A Review

IF 4.6 4区 化学 Q2 ELECTROCHEMISTRY Batteries Pub Date : 2024-02-21 DOI:10.3390/batteries10030073
Sumit Kumar, Rajesh Raghupathy, Michele Vittadello
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Abstract

Lithium-based electrolytes are, at least from a thermodynamic standpoint, the most suitable ion-transport materials for energy storage systems. However, lithium-based ionic conductors suffer from safety concerns, and the limited availability of lithium in the Earth’s crust is at the root of the need to consider alternative metal ions. Notably, sodium stands out as the sixth most-prevalent element; therefore, when considering mineral reserves, it as a very attractive candidate as an alternative to the status quo. Even if the specific energy and energy density of sodium are indeed inferior with respect to those of lithium, there is substantial economic appeal in promoting the use of the former metal in stationary energy storage applications. For these reasons, the promise of sodium is likely to extend to other commercial applications, including portable electronics, as well as hybrid and electric vehicles. Widely used organic liquid electrolytes, regardless of their chosen metal cation, are disadvantageous due to leakage, evaporation, and high flammability. Polymer electrolytes are acknowledged as the most effective candidates to overcome these obstacles and facilitate the advancement of next-generation energy storage applications. In this contribution, an in-depth and comprehensive review of sodium polymer electrolytes for primary and secondary batteries is proposed. The overarching goal was to gain insight into successful synthetic strategies and their implications for conduction parameters and conductivity mechanisms. The focus lies on solid, gel, and composite polymer electrolytes. Our hope is that the proposed discussion will be helpful to all operators in the field, whether in tackling fundamental research problems or resolving issues of practical significance.
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钠聚合物电解质:综述
至少从热力学角度来看,锂基电解质是最适合用于能量储存系统的离子传输材料。然而,锂基离子导体存在安全隐患,而且地壳中锂的供应有限,这也是需要考虑替代金属离子的根本原因。值得注意的是,钠是第六大最普遍的元素;因此,在考虑矿物储量时,钠是一个非常有吸引力的候选替代品。即使钠的比能量和能量密度确实不如锂,但在固定储能应用中推广使用前一种金属仍具有巨大的经济吸引力。基于这些原因,钠的前景可能会扩展到其他商业应用,包括便携式电子产品以及混合动力和电动汽车。广泛使用的有机液态电解质,无论选择的是哪种金属阳离子,都存在泄漏、蒸发和易燃等缺点。聚合物电解质被认为是克服这些障碍、促进下一代储能应用发展的最有效候选材料。本论文将对钠聚合物电解质在一次电池和二次电池中的应用进行深入全面的评述。首要目标是深入了解成功的合成策略及其对传导参数和传导机制的影响。重点在于固体、凝胶和复合聚合物电解质。我们希望所提议的讨论将对该领域的所有操作人员有所帮助,无论是解决基础研究问题还是解决具有实际意义的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Batteries
Batteries Energy-Energy Engineering and Power Technology
CiteScore
4.00
自引率
15.00%
发文量
217
审稿时长
7 weeks
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