College of Chemistry and Chemical Engineering, Taiyuan University of Technology, Taiyuan 030024, Shanxi, China.
Department of Chemistry, University of Texas at San Antonio, One UTSA Circle, San Antonio, TX 78249-0698, USA.
Science. 2018 Oct 26;362(6413):443-446. doi: 10.1126/science.aat0586.
The separation of ethane from its corresponding ethylene is an important, challenging, and energy-intensive process in the chemical industry. Here we report a microporous metal-organic framework, iron(III) peroxide 2,5-dioxido-1,4-benzenedicarboxylate [Fe(O)(dobdc) (dobdc: 2,5-dioxido-1,4-benzenedicarboxylate)], with iron (Fe)-peroxo sites for the preferential binding of ethane over ethylene and thus highly selective separation of CH/CH Neutron powder diffraction studies and theoretical calculations demonstrate the key role of Fe-peroxo sites for the recognition of ethane. The high performance of Fe(O)(dobdc) for the ethane/ethylene separation has been validated by gas sorption isotherms, ideal adsorbed solution theory calculations, and simulated and experimental breakthrough curves. Through a fixed-bed column packed with this porous material, polymer-grade ethylene (99.99% pure) can be straightforwardly produced from ethane/ethylene mixtures during the first adsorption cycle, demonstrating the potential of Fe(O)(dobdc) for this important industrial separation with a low energy cost under ambient conditions.
从乙烷与其相应的乙烯中分离出来是化学工业中一个重要、具有挑战性和能源密集型的过程。在这里,我们报告了一种微孔金属有机骨架,铁(III)过氧 2,5-二氧代-1,4-苯二甲酸酯[Fe(O)(dobdc) (dobdc:2,5-二氧代-1,4-苯二甲酸酯)],具有铁(Fe)-过氧位点,可优先结合乙烷而不是乙烯,从而实现 CH/CH 的高度选择性分离。粉末衍射研究和理论计算证明了 Fe-过氧位点对乙烷识别的关键作用。气体吸附等温线、理想吸附溶液理论计算以及模拟和实验突破曲线验证了 Fe(O)(dobdc)在乙烷/乙烯分离方面的高性能。通过填充这种多孔材料的固定床柱,在第一次吸附循环中,可以直接从乙烷/乙烯混合物中生产出聚合物级别的乙烯(纯度为 99.99%),证明了 Fe(O)(dobdc)在环境条件下以低能耗实现这一重要工业分离的潜力。