Olivera Lužanin, Raquel Dantas, Ava Rajh, Urban Košir, Robert Dominko, Klemen Bučar, Matjaž Kavčič, Manuel Souto, Jan Bitenc
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引用次数: 0
摘要
近年来,铝金属有机电池由于其可持续性和高体积能量密度的承诺而引起了极大的兴趣,同时基于丰富的材料。然而,许多研究对其性能的评估不够严谨,往往强调高容量和功率性能,以及在非常高的循环率下的循环稳定性。本文重新评估了用于可充电铝电池的高度稳定的β-酮胺连接蒽醌基共价有机框架(DAAQ-TFP-COF)的可行性。首先,研究了不同电压窗对离子液体电解质电化学行为的影响,确定了容量和稳定性之间的最佳平衡。在0.5 ~ 2.0 V的优化电压窗口内,DAAQ-TFP-COF在50 mA g-1时的容量达到113.9 mAh g-1。为了更深入地了解电荷存储机制,采用表面和体敏感表征技术-能量色散x射线光谱和x射线拉曼光谱-证实单价AlCl2 +是主要配位物质。最后,评估了DAAQ-TFP-COF与更具成本效益的酰胺基铝电解质的相容性。在丁酰胺基电解质中,该有机材料表现出稳定的性能和较高的库仑效率。基于我们的研究结果,对未来铝电池应用中推进cof电极必须解决的关键挑战提出了现实的展望。
In recent years, Al metal organic batteries have attracted significant interest due to their promise of sustainability and high volumetric energy densities, while being based on abundant materials. However, many studies assess their performance with insufficient rigor, often emphasizing high capacity and power performance, as well as cycling stability at very high cycling rates. Herein, the feasibility of a highly stable β-ketoenamine-linked anthraquinone-based covalent organic framework (DAAQ-TFP-COF) for rechargeable Al batteries is reassessed. First, the influence of different voltage windows on electrochemical behavior in an ionic liquid electrolyte, identifying an optimal balance between capacity and stability, is investigated. Within the optimized voltage window of 0.5 to 2.0 V, DAAQ-TFP-COF achieves a capacity of 113.9 mAh g−1 at 50 mA g−1. To gain deeper insight into the charge storage mechanism, surface- and bulk-sensitive characterization techniques—energy-dispersive X-ray spectroscopy and X-ray Raman spectroscopy—confirming monovalent AlCl2+ as the main coordination species are employed. Finally, the compatibility of DAAQ-TFP-COF with more cost-effective amide-based Al electrolytes is evaluated. In butyramide-based electrolyte, the organic material exhibits stable performance and high Coulombic efficiency. Based on our findings, a realistic outlook on the key challenges that must be addressed to advance COF-based electrodes for future aluminum battery applications is provided.
期刊介绍:
ChemSusChem
Impact Factor (2016): 7.226
Scope:
Interdisciplinary journal
Focuses on research at the interface of chemistry and sustainability
Features the best research on sustainability and energy
Areas Covered:
Chemistry
Materials Science
Chemical Engineering
Biotechnology