Oloye Olawale, O'Mullane Anthony P
School of Chemistry and Physics, Queensland University of Technology (QUT), Brisbane, QLD 4001, Australia.
Centre for Materials Science, Queensland University of Technology (QUT), Brisbane, QLD 4001, Australia.
ChemSusChem. 2021 Apr 9;14(7):1767-1775. doi: 10.1002/cssc.202100134. Epub 2021 Feb 17.
A carbon dioxide capture, conversion, and utilization technology has been developed that can be powered by renewable energy with the potential to mitigate CO emissions. This relies on an electrochemical process whereby the dissolution of carbon dioxide into carbonate ions is accelerated by a locally induced pH change at the cathode. The carbonate ions can then complex with metal cations, such as Ca , Sr , or Mn , present in solution to form their respective metal carbonates, which precipitate out of solution. To ensure the cathode is not fouled by deposition of the insulating metal carbonate, the process is operated under hydrogen evolution conditions, thereby alleviating any significant attachment of the solid to the electrode. This process is demonstrated in CO -saturated solutions while the possibility of direct air capture is also shown, where the precipitation of CaCO from atmospherically dissolved CO during electrolysis is observed. The latter process can be significantly enhanced by using 5 vol.% of monoethanolamine (MEA) in the electrochemical cell. Finally, the process is investigated using seawater, which is also successful after the initial precipitation of metal sulfates from solution. In particular, the use of renewable energy to capture CO and create CaCO while also generating hydrogen may be of particular interest to the cement industry, which has a significant CO footprint.
一种二氧化碳捕获、转化和利用技术已经被开发出来,该技术可以由可再生能源提供动力,具有减少二氧化碳排放的潜力。这依赖于一种电化学过程,通过阴极处局部诱导的pH变化加速二氧化碳溶解成碳酸根离子。然后碳酸根离子可以与溶液中存在的金属阳离子(如Ca²⁺、Sr²⁺或Mn²⁺)络合,形成各自的金属碳酸盐,从溶液中沉淀出来。为确保阴极不会被绝缘金属碳酸盐的沉积污染,该过程在析氢条件下运行,从而减轻固体在电极上的任何显著附着。该过程在二氧化碳饱和溶液中得到了证明,同时也展示了直接空气捕获的可能性,即在电解过程中观察到大气中溶解的二氧化碳沉淀出碳酸钙。通过在电化学池中使用5体积%的单乙醇胺(MEA),后一过程可以得到显著增强。最后,使用海水对该过程进行了研究,在溶液中最初沉淀出金属硫酸盐后该过程也取得了成功。特别是,利用可再生能源捕获二氧化碳并生成碳酸钙同时还产生氢气,可能对具有大量二氧化碳排放足迹的水泥行业特别有吸引力。