Abdinejad Maryam, Massen-Hane Michael, Seo Hyowon, Hatton T Alan
Department of Chemical Engineering, Massachusetts Institute of Technology, 02139, Cambridge, MA, USA.
Department of Materials Science and Chemical Engineering, Stony Brook University, 11794, Stony Brook, NY, USA.
Angew Chem Int Ed Engl. 2024 Dec 20;63(52):e202412229. doi: 10.1002/anie.202412229. Epub 2024 Nov 6.
Electrochemical carbon capture offers a promising alternative to thermal amine technology, which serves as the traditional benchmark method for CO capture. Despite its technological maturity, the widespread deployment of thermal amine technologies is hindered by high energy consumption and sorbent degradation. In contrast, electrochemical methods, with their inherently isothermal operation, address these challenges, offering enhanced energy efficiency and robustness. Among emerging strategies, electrochemical carbon capture systems using redox-active materials such as quinones stand out for their potential to capture CO. However, their practical application is currently limited by their low stability in the presence of oxygen. We demonstrate that benzodithiophene quinone (BDT-Q), a heterocyclic quinone, exhibits high stability in electrochemical carbon capture processes with oxygen-containing feed gas. Conducted in a cyclic flow system with a simulated flue gas mixture containing 13 % CO and 3.5 % O for over 100 hours, the process demonstrates high oxygen stability with an electron utilization of 0.83 without significant degradation, indicating a promising approach for real world applications. Our study explores the potential of new heterocyclic quinone compounds in the context of carbon capture technologies.
电化学碳捕集为热胺技术提供了一种有前景的替代方案,热胺技术是传统的二氧化碳捕集基准方法。尽管热胺技术已经成熟,但高能耗和吸附剂降解阻碍了其广泛应用。相比之下,电化学方法因其固有的等温操作,解决了这些挑战,具有更高的能源效率和稳定性。在新兴策略中,使用醌等氧化还原活性材料的电化学碳捕集系统因其捕集二氧化碳的潜力而脱颖而出。然而,它们目前的实际应用受到在氧气存在下稳定性低的限制。我们证明,苯并二噻吩醌(BDT-Q),一种杂环醌,在含氧气原料气的电化学碳捕集过程中表现出高稳定性。在含有13%二氧化碳和3.5%氧气的模拟烟道气混合物的循环流动系统中进行了超过100小时的实验,该过程显示出高氧稳定性,电子利用率为0.83,且无明显降解,表明这是一种有前景的实际应用方法。我们的研究在碳捕集技术背景下探索了新型杂环醌化合物的潜力。