Hiltermann Tyler W, Sarkar Subhajit, Thangadurai Venkataraman, Sutherland Todd C
Department of Chemistry, University of Calgary, 2500 University Drive Northwest, Calgary, Alberta T2N 1N4, Canada.
ACS Appl Mater Interfaces. 2024 Feb 21;16(7):8580-8588. doi: 10.1021/acsami.3c14123. Epub 2024 Feb 6.
This study introduces a sustainable approach to designing organic cathode materials (OCMs) for lithium-ion batteries as a potential replacement for traditional metal-based electrodes. Utilizing green synthetic methodologies, we synthesized and characterized five distinct quinone derivatives and investigated their electrochemical attributes within Li-ion battery architectures. Notably, the observed specific capacities were lower than the theoretical predictions, suggesting limitations in achieving efficient redox reactions in a coin-cell configuration. Among the quinone derivatives studied, one variant derived from natural vanillin showed superior cycle stability, maintaining 58% capacity retention over 95 charge-discharge cycles, and achieving a Coulombic efficiency of 90%. Importantly, we discovered that the commonly used Super-P conductive carbon did not yield any measurable battery performance; instead, these quinones necessitated the incorporation of graphene nanoplatelets as the conductive matrix. Through a facile one-step synthesis in ethanol or water, we have demonstrated a viable synthetic route for producing OCMs, albeit with moderate performances, which have attempted to address common concerns of high solubility and poor redox reactivity of previous OCMs, thereby offering a sustainable pathway for the development of organic-based energy storage devices.
本研究介绍了一种可持续的方法,用于设计锂离子电池的有机阴极材料(OCM),作为传统金属基电极的潜在替代品。利用绿色合成方法,我们合成并表征了五种不同的醌衍生物,并研究了它们在锂离子电池结构中的电化学特性。值得注意的是,观察到的比容量低于理论预测值,这表明在硬币电池配置中实现高效氧化还原反应存在局限性。在所研究的醌衍生物中,一种源自天然香草醛的变体表现出优异的循环稳定性,在95次充放电循环中保持58%的容量保持率,并实现了90%的库仑效率。重要的是,我们发现常用的Super-P导电碳并未产生任何可测量的电池性能;相反,这些醌需要加入石墨烯纳米片作为导电基质。通过在乙醇或水中进行简便的一步合成,我们展示了一种可行的合成路线来生产OCM,尽管其性能中等,该路线试图解决先前OCM常见的高溶解度和氧化还原反应性差的问题,从而为基于有机的储能装置的开发提供了一条可持续的途径。