Siegelman Rebecca L, Thompson Joshua A, Mason Jarad A, McDonald Thomas M, Long Jeffrey R
Department of Chemistry, University of California Berkeley CA 94720 USA
Materials Sciences Division, Lawrence Berkeley National Laboratory Berkeley CA 94720 USA.
Chem Sci. 2022 Sep 13;13(40):11772-11784. doi: 10.1039/d2sc03570g. eCollection 2022 Oct 19.
Natural gas constitutes a growing share of global primary energy due to its abundant supply and lower CO emission intensity compared to coal. For many natural gas reserves, CO contamination must be removed at the wellhead to meet pipeline specifications. Here, we demonstrate the potential of the diamine-appended metal-organic framework ee-2-Mg(dobpdc) (ee-2 = ,-diethylethylenediamine; dobpdc = 4,4'-dioxidobiphenyl-3,3'-dicarboxylate) as a next-generation CO capture material for high-pressure natural gas purification. Owing to a cooperative adsorption mechanism involving formation of ammonium carbamate chains, ee-2-Mg(dobpdc) can be readily regenerated with a minimal change in temperature or pressure and maintains its CO capacity in the presence of water. Moreover, breakthrough experiments reveal that water enhances the CO capture performance of ee-2-Mg(dobpdc) by eliminating "slip" of CO before full breakthrough. Spectroscopic characterization and multicomponent adsorption isobars suggest that the enhanced performance under humid conditions arises from preferential stabilization of the CO-inserted phase in the presence of water. The favorable performance of ee-2-Mg(dobpdc) is further demonstrated through comparison with a benchmark material for this separation, zeolite 13X, as well as extended pressure cycling. Overall, these results support continued development of ee-2-Mg(dobpdc) as a promising adsorbent for natural gas purification.
由于天然气供应丰富且与煤炭相比碳排放强度较低,其在全球一次能源中所占份额不断增加。对于许多天然气储备而言,必须在井口去除一氧化碳污染物以满足管道规格要求。在此,我们展示了 appended 二胺金属有机框架 ee-2-Mg(dobpdc)(ee-2 = ,-二乙基亚乙基二胺;dobpdc = 4,4'-二氧代联苯-3,3'-二羧酸酯)作为用于高压天然气净化的下一代一氧化碳捕获材料的潜力。由于涉及氨基甲酸铵链形成的协同吸附机制,ee-2-Mg(dobpdc) 可以在温度或压力变化最小的情况下轻松再生,并在有水存在的情况下保持其一氧化碳捕获能力。此外,突破实验表明,水通过消除一氧化碳在完全突破之前的“滑移”来提高 ee-2-Mg(dobpdc) 的一氧化碳捕获性能。光谱表征和多组分吸附等压线表明,在潮湿条件下性能增强源于在有水存在的情况下优先稳定一氧化碳插入相。通过与用于这种分离的基准材料沸石 13X 进行比较以及延长压力循环,进一步证明了 ee-2-Mg(dobpdc) 的良好性能。总体而言,这些结果支持继续开发 ee-2-Mg(dobpdc) 作为一种有前途的天然气净化吸附剂。