Technische Universität Berlin, Research Center of Microperipheric Technologies, Gustav-Meyer-Allee 25, 13355, Berlin, Germany.
Solvionic SA, Chemin de la Loge, CS 27813, 31078, Toulouse, France.
Adv Mater. 2016 Sep;28(35):7564-79. doi: 10.1002/adma.201601357. Epub 2016 Jun 30.
A critical overview of the latest developments in the aluminum battery technologies is reported. The substitution of lithium with alternative metal anodes characterized by lower cost and higher abundance is nowadays one of the most widely explored paths to reduce the cost of electrochemical storage systems and enable long-term sustainability. Aluminum based secondary batteries could be a viable alternative to the present Li-ion technology because of their high volumetric capacity (8040 mAh cm(-3) for Al vs 2046 mAh cm(-3) for Li). Additionally, the low cost aluminum makes these batteries appealing for large-scale electrical energy storage. Here, we describe the evolution of the various aluminum systems, starting from those based on aqueous electrolytes to, in more details, those based on non-aqueous electrolytes. Particular attention has been dedicated to the latest development of electrolytic media characterized by low reactivity towards other cell components. The attention is then focused on electrode materials enabling the reversible aluminum intercalation-deintercalation process. Finally, we touch on the topic of high-capacity aluminum-sulfur batteries, attempting to forecast their chances to reach the status of practical energy storage systems.
本文对铝电池技术的最新进展进行了批判性综述。用成本更低、储量更高的替代金属阳极替代锂,是降低电化学储能系统成本并实现长期可持续性的最广泛探索途径之一。由于其高体积容量(Al 为 8040 mAh cm(-3),Li 为 2046 mAh cm(-3)),基于铝的二次电池可能成为现有锂离子技术的可行替代品。此外,低成本的铝使这些电池在大规模电能存储方面具有吸引力。在这里,我们从基于水系电解液的各种铝系统开始,详细描述了基于非水系电解液的系统的演变。特别关注对其他电池组件反应性低的新型电解液的最新发展。然后,我们将注意力集中在能够实现可逆铝嵌入-脱嵌过程的电极材料上。最后,我们讨论了高容量铝-硫电池的话题,试图预测它们达到实用储能系统状态的可能性。