Chu Xiao-Zhong, Zhou Ya-Ping, Zhang Yu-Zhe, Su Wei, Sun Yan, Zhou Li
Department of Chemistry, School of Science, Tianjin University, Tianjin 300072, P. R. China.
J Phys Chem B. 2006 Nov 16;110(45):22596-600. doi: 10.1021/jp064745o.
The equilibrium and dynamic adsorption data of H(2) and D(2) on different micro- and mesoporous adsorbents with orderly structure including 3A, 4A, 5A, Y, and 10X zeolites; carbon CMK-3; silica SBA-15; and so forth were collected. Critical effect of the nanodimension of adsorbents on the adsorption behavior of hydrogen and its isotopes is shown. The highest adsorption capacity was observed at pore size 0.7 nm, but equal or even larger isotope difference in the equilibrium adsorption was observed at larger pore sizes, whereas the largest isotope difference in the dynamic adsorption was observed at 0.5 nm. The adsorption rate of D(2) is larger than that of H(2) in microporous adsorbents, but the sequence could be switched over in mesoporous materials. Linear relationship was observed between the adsorption capacity for hydrogen and the specific surface area of adsorbents although the adsorbents are made of different material, which provides a convincing proof of the monolayer mechanism of hydrogen adsorption. The linear plot for microporous adsorbents has a larger slope than that for mesoporous adsorbents, which is attributed to the stronger adsorption potential in micropores.
收集了H₂和D₂在具有有序结构的不同微孔和介孔吸附剂上的平衡和动态吸附数据,这些吸附剂包括3A、4A、5A、Y和10X沸石;碳CMK - 3;二氧化硅SBA - 15等。结果表明了吸附剂的纳米尺寸对氢及其同位素吸附行为的关键影响。在孔径为0.7 nm时观察到最高吸附容量,但在较大孔径时观察到平衡吸附中同位素差异相等甚至更大,而在动态吸附中最大同位素差异出现在0.5 nm处。在微孔吸附剂中,D₂的吸附速率大于H₂,但在介孔材料中该顺序可能会颠倒。尽管吸附剂由不同材料制成,但观察到氢吸附容量与吸附剂比表面积之间存在线性关系,这为氢吸附的单层机制提供了令人信服的证据。微孔吸附剂的线性图斜率比介孔吸附剂的大,这归因于微孔中更强的吸附势。