Wang Kaili, Zhang Zhaowei, Wang Shenyao, Jiang Lili, Li Haoran, Wang Congmin
National Key Laboratory of Biobased Transportation Fuel Technology, Department of Chemistry, Center of Chemistry for Frontier Technologies Institution, Zhejiang University, Hangzhou, 310027, P.R. China.
ChemSusChem. 2024 Aug 26;17(16):e202301951. doi: 10.1002/cssc.202301951. Epub 2024 Apr 15.
A strategy of tuning azole-based ionic liquids for reversible CO capture from ambient air was reported. Through tuning the basicity of anion as well as the type of cation, an ideal azole-based ionic liquid with both high CO capacity and excellent stability was synthesized, which exhibited a highest single-component isotherm uptake of 2.17 mmol/g at the atmospheric CO concentration of 0.4 mbar at 30 °C, even in the presence of water. The bound CO can be released by relatively mild heating of the IL-CO at 80 °C, which makes it promising for energy-efficient CO desorption and sorbent regeneration, leading to excellent reversibility. To the best of our knowledge, these azole-based ionic liquids are superior to other adsorbent materials for direct air capture due to their dual-tunable properties and high CO capture efficiency, offering a new prospect for efficient and reversible direct air capture technologies.
报道了一种调节基于唑的离子液体以从环境空气中可逆捕获CO的策略。通过调节阴离子的碱性以及阳离子的类型,合成了一种兼具高CO容量和出色稳定性的理想的基于唑的离子液体,即使在有水存在的情况下,在30℃、大气CO浓度为0.4毫巴时,其单组分等温吸附量最高可达2.17 mmol/g。通过在80℃对IL-CO进行相对温和的加热,可以释放结合的CO,这使其在节能的CO解吸和吸附剂再生方面具有潜力,从而具有出色的可逆性。据我们所知,这些基于唑的离子液体由于其双重可调性和高CO捕获效率,优于其他用于直接空气捕获的吸附材料,为高效且可逆的直接空气捕获技术提供了新的前景。