Designing the next generation of symmetrical organic redox flow batteries using helical carbocations

Jules Moutet, Tarek H. El-Assaad, Ramandeep Kaur, David D. Mills, T. Gianetti
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Abstract

In recent years, non-aqueous fully organic Redox Flow Batteries (RFBs) have displayed potential in broadening the electrochemical window and enhancing energy density in RFBs by relying on redox-active organic molecules to provide improved sustainability in comparison to metal-based charge carriers. Of particular interest, systems that rely on a single bipolar redox molecule (BRM) for their operation, known as symmetrical organic RFBs, have gained momentum as the utilization of a BRM eliminates membrane crossover issues, thus extending the lifespan of electrical energy storage systems while reducing their cost. In this manuscript, we will present our contribution to this field through the design of tunable bipolar molecules within the helicene carbocation class. This particular type of BRM is synthetically very affordable and has proven to be highly modifiable and robust. Through the examination of 11 examples, we will demonstrate how an approach based on readily available electrochemical tools can be efficiently employed to generate and assess a library of compounds for future full flow RFB applications.
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利用螺旋碳基设计下一代对称有机氧化还原液流电池
近年来,与基于金属的电荷载体相比,非水完全有机氧化还原流电池(RFB)依靠氧化还原活性有机分子提供更好的可持续性,在拓宽电化学窗口和提高 RFB 能量密度方面显示出潜力。尤其令人感兴趣的是,依靠单个双极氧化还原分子(BRM)运行的系统(称为对称有机 RFB)已经获得了发展势头,因为利用双极氧化还原分子消除了膜交叉问题,从而延长了电能存储系统的使用寿命,同时降低了成本。在本手稿中,我们将介绍我们在这一领域的贡献,我们设计了碳化螺旋烯类中的可调双极分子。这种特殊类型的双极性分子在合成上非常经济实惠,而且已被证明具有很高的可调性和稳健性。通过对 11 个实例的研究,我们将展示如何有效地利用基于现成电化学工具的方法来生成和评估化合物库,以用于未来的全流 RFB 应用。
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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