He Wen, Du Jingcheng, Liu Linghao, Sun Qian, Song Ziye, Ma Ji, Cao Dong, Lim Weiwang, Hassan Shabi Ul, Liu Jiangtao
Department of Environmental Science and Engineering, University of Science and Technology of China 230052 China
RSC Adv. 2023 Mar 30;13(15):10168-10181. doi: 10.1039/d3ra00617d. eCollection 2023 Mar 27.
Hydrogen is an important energy carrier for the transition to a carbon-neutral society, the efficient separation and purification of hydrogen from gaseous mixtures is a critical step for the implementation of a hydrogen economy. In this work, graphene oxide (GO) tuned polyimide carbon molecular sieve (CMS) membranes were prepared by carbonization, which show an attractive combination of high permeability, selectivity and stability. The gas sorption isotherms indicate that the gas sorption capability increases with the carbonization temperature and follows the order of PI-GO-1.0%-600 °C > PI-GO-1.0%-550 °C > PI-GO-1.0%-500 °C, more micropores would be created under higher temperatures under GO guidance. The synergistic GO guidance and subsequent carbonization of PI-GO-1.0% at 550 °C increased H permeability from 958 to 7462 Barrer and H/N selectivity from 14 to 117, superior to state-of-the-art polymeric materials and surpassing Robeson's upper bound line. As the carbonization temperature increased, the CMS membranes gradually changed from the turbostratic polymeric structure to a denser and more ordered graphite structure. Therefore, ultrahigh selectivities for H/CO (17), H/N (157), and H/CH (243) gas pairs were achieved while maintaining moderate H gas permeabilities. This research opens up new avenues for GO tuned CMS membranes with desirable molecular sieving ability for hydrogen purification.
氢是向碳中性社会过渡的重要能量载体,从气体混合物中高效分离和提纯氢是实现氢能经济的关键步骤。在本工作中,通过碳化制备了氧化石墨烯(GO)调控的聚酰亚胺碳分子筛(CMS)膜,该膜展现出高渗透性、选择性和稳定性的诱人组合。气体吸附等温线表明,气体吸附能力随碳化温度升高而增加,顺序为PI-GO-1.0%-600 °C > PI-GO-1.0%-550 °C > PI-GO-1.0%-500 °C,在GO引导下,更高温度会产生更多微孔。PI-GO-1.0%在550 °C下GO引导与随后的碳化协同作用使H渗透率从958增加到7462 Barrer,H/N选择性从14提高到117,优于现有聚合物材料且超越了Robeson上限线。随着碳化温度升高,CMS膜逐渐从乱层聚合物结构转变为更致密、更有序的石墨结构。因此,在保持适度H气体渗透率的同时,实现了对H/CO(17)、H/N(157)和H/CH(243)气体对的超高选择性。本研究为具有理想氢纯化分子筛能力的GO调控CMS膜开辟了新途径。