Zhang Linda, Wulf Toshiki, Baum Florian, Schmidt Wolfgang, Heine Thomas, Hirscher Michael
Max Planck Institute for Intelligent Systems, Heisenbergstr. 3, 70569 Stuttgart, Germany.
Wilhelm-Ostwald-Institut für Physikalische und Theoretische Chemie, Linnéstraße 2, 04103 Leipzig, Germany.
Inorg Chem. 2022 Jun 27;61(25):9413-9420. doi: 10.1021/acs.inorgchem.2c00028. Epub 2022 Jun 14.
We report an ion-exchanged zeolite as an excellent candidate for large-scale application in hydrogen isotope separation. Ag(I)-exchanged zeolite Y has been synthesized through a standard ion-exchange procedure. The D/H separation performance has been systematically investigated via thermal desorption spectroscopy (TDS). Undercoordinated Ag in zeolite AgY acts as a strong adsorption site and adorbs preferentially the heavier isotopologue even above liquid nitrogen temperature. The highest D/H selectivity of 10 is found at an exposure temperature of 90 K. Furthermore, the high Al content of the zeolite structure leads to a high density of Ag sites, resulting in a high gas uptake. In the framework, approximately one-third of the total physisorbed hydrogen isotopes are adsorbed on the Ag sites, corresponding to 3 mmol/g. A density functional theory (DFT) calculation reveals that the isotopologue-selective adsorption of hydrogen at Ag sites contributes to the outstanding hydrogen isotope separation, which has been directly observed through cryogenic thermal desorption spectroscopy. The overall performance of zeolite AgY, showing good selectivity combined with high gas uptake, is very promising for future technical applications.
我们报道了一种离子交换沸石,它是大规模应用于氢同位素分离的优秀候选材料。通过标准离子交换程序合成了Ag(I)交换的Y型沸石。通过热脱附光谱法(TDS)系统地研究了D/H分离性能。沸石AgY中配位不足的Ag作为强吸附位点,即使在液氮温度以上也优先吸附较重的同位素分子。在90K的暴露温度下,发现最高的D/H选择性为10。此外,沸石结构的高Al含量导致Ag位点的高密度,从而具有高的气体吸附量。在该骨架中,大约三分之一的总物理吸附氢同位素吸附在Ag位点上,相当于3 mmol/g。密度泛函理论(DFT)计算表明,Ag位点上氢的同位素选择性吸附有助于出色的氢同位素分离,这已通过低温热脱附光谱直接观察到。沸石AgY的整体性能表现出良好的选择性和高气体吸附量,对未来的技术应用非常有前景。