Chen Kaifei, Mousavi Seyed Hesam, Yu Zhi, Zhang Lina, Gu Qinfen, Snurr Randall Q, Webley Paul A, Sun Nannan, Li Gang Kevin
Photon Science Research Center for Carbon Dioxide, CAS Key Lab of Low-Carbon Conversion Science and Engineering, Shanghai Advanced Research Institute, Chinese Academy of Sciences, 201210, Shanghai, China.
Department of Chemical Engineering, The University of Melbourne, Parkville, Victoria 3010, Australia.
ACS Appl Mater Interfaces. 2024 Sep 25;16(38):51129-51138. doi: 10.1021/acsami.4c11059. Epub 2024 Sep 11.
Controlling gas admission by regulating pore accessibility in porous materials has been a topic of extensive research. Recently, the electric field (E-field) has emerged as an external stimulus to alter the adsorption behavior of some microporous adsorbents. However, the mechanism behind this phenomenon is not yet fully understood. Here, we demonstrate the crucial role of the trapdoor cations of zeolite molecular sieves in E-field-regulated gas adsorption. The E-field activation caused framework expansion and cation deviation, significantly reducing the energy barrier for gas molecules passing through the pore aperture gated by the trapdoor cation. This led to an increase in the N adsorption capacity of ZSM-25 and a 60% improvement in N/CH selectivity in the quest for nitrogen rejection for natural gas processing. By combining experimental and computational approaches, we elucidated the influence of E-field activation as a concurrent effect of the reduced heat of adsorption caused by framework expansion and the decrease in the energy barrier resulting from promoted cation oscillation. These findings pave the way for the material design of E-field-regulated adsorption and its application in molecular separation.
通过调节多孔材料的孔隙可及性来控制气体吸附一直是广泛研究的课题。最近,电场(E场)已成为一种外部刺激因素,可改变一些微孔吸附剂的吸附行为。然而,这一现象背后的机制尚未完全了解。在此,我们证明了沸石分子筛的活板阳离子在电场调节气体吸附中的关键作用。电场激活导致骨架膨胀和阳离子偏离,显著降低了气体分子通过由活板阳离子控制的孔口的能垒。这导致ZSM-25的N吸附容量增加,并且在天然气处理的氮气脱除过程中,N/CH选择性提高了60%。通过结合实验和计算方法,我们阐明了电场激活的影响,它是由骨架膨胀导致的吸附热降低和阳离子振荡增强导致的能垒降低的共同作用。这些发现为电场调节吸附的材料设计及其在分子分离中的应用铺平了道路。