Next-Generation Aluminum-Air Batteries: Integrating New Materials and Technologies for Superior Performance

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2025-03-04 DOI:10.1021/acsaem.4c02926
Maham Dilshad, Tao Li, Shern-Long Lee* and Lei Qin*, 
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Abstract

Aluminum-air batteries (AABs) are positioned as next-generation electrochemical energy storage systems, boasting high theoretical energy density, cost-effectiveness, and a lightweight profile due to aluminum’s abundance. This review evaluates the latest advancements in AABs, emphasizing breakthroughs in anode optimization, electrolyte formulation, and cathode material development to enhance performance and scalability for practical applications. Anode improvements, including alloying and surface treatments, reduce parasitic corrosion and improve anode stability, addressing prevailing challenges such as hydrogen evolution and rapid capacity fade. Electrolyte innovations, particularly hybrid systems integrating ionic liquids or neutral salts, are shown to mitigate electrolyte-induced anode degradation while ensuring high ionic conductivity. Meanwhile, advancements in air-breathing cathodes, employing cost-effective materials like doped carbon, transition metal oxides/sulfide, and metal organic framework-derived catalyst, improve oxygen reduction/evolution reaction kinetics and durability, critical for the extended lifespan and efficiency of AABs. These developments collectively enhance AABs viability for applications in electric vehicles and renewable energy storage, highlighting the strategic integration of materials science and electrochemical engineering to address longstanding technical barriers. AABs are thus positioned as viable candidates in the pursuit of sustainable, high-capacity, and long-lasting energy solutions for the future.

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下一代铝-空气电池:整合新材料和新技术,实现卓越性能
铝-空气电池(AABs)被定位为下一代电化学储能系统,具有较高的理论能量密度、成本效益,并且由于铝的丰富而具有轻质外形。本文综述了AABs的最新进展,强调了在阳极优化、电解质配方和阴极材料开发方面的突破,以提高实际应用的性能和可扩展性。阳极的改进,包括合金化和表面处理,减少了寄生腐蚀,提高了阳极的稳定性,解决了当前的挑战,如析氢和快速容量褪色。电解质的创新,特别是结合离子液体或中性盐的混合系统,被证明可以减轻电解质引起的阳极降解,同时确保高离子导电性。与此同时,吸气式阴极的进步,采用了具有成本效益的材料,如掺杂碳、过渡金属氧化物/硫化物和金属有机框架衍生催化剂,提高了氧还原/演化反应动力学和耐久性,这对延长自身抗体的使用寿命和效率至关重要。这些发展共同提高了AABs在电动汽车和可再生能源存储中的应用可行性,突出了材料科学和电化学工程的战略整合,以解决长期存在的技术障碍。因此,在追求可持续、高容量和持久的未来能源解决方案方面,AABs被定位为可行的候选者。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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