Dovgaliuk Iurii, Senkovska Irena, Li Xiao, Dyadkin Vadim, Filinchuk Yaroslav, Chernyshov Dmitry
Swiss-Norwegian Beamlines at the European Synchrotron Radiation Facility, 38000, Grenoble, France.
Institut des Matériaux Poreux de Paris, Ecole Normale Supérieure, ESPCI Paris, CNRS, PSL Université, 75005, Paris, France.
Angew Chem Int Ed Engl. 2021 Mar 1;60(10):5250-5256. doi: 10.1002/anie.202015019. Epub 2021 Jan 19.
Gas adsorption by porous frameworks sometimes results in structure "breathing", "pores opening/closing", "negative gas adsorption", and other phenomena. Time-dependent diffraction can address both kinetics of the guest uptake and structural response of the host framework. Using sub-second in situ powder X-ray diffraction, three intracrystalline diffusion scenarios have been evaluated from the isothermal kinetics of Ar, Kr, and Xe adsorption by nanoporous γ-Mg(BH ) . These scenarios are dictated by two possible simultaneous transport mechanisms: diffusion through the intra- (i) and interchannel apertures (ii) of γ-Mg(BH ) crystal structure. The contribution of (i) and (ii) changes depending on the kinetic diameter of the noble gas molecule and temperature regime. The lowest single activation barrier for the smallest Ar suggests equal diffusion of the atoms trough both pathways. Contrary, for the medium sized Kr we resolve the contributions of two parallel transport mechanisms, which tentatively can be attributed to the smaller barrier of the migration paths via the channel like pores and the higher barrier for the diffusion via narrow aperture between these channels. The largest Xe atoms diffuse only along 1D channels and show the highest single activation barrier.
多孔骨架对气体的吸附有时会导致结构“呼吸”、“孔开合”、“负气体吸附”等现象。时间分辨衍射可以研究客体吸附动力学和主体骨架的结构响应。利用亚秒级原位粉末X射线衍射,通过纳米多孔γ-Mg(BH₄)₂对Ar、Kr和Xe的等温吸附动力学评估了三种晶内扩散情况。这些情况由两种可能同时存在的传输机制决定:通过γ-Mg(BH₄)₂晶体结构的(i)晶内和(ii)通道间孔径进行扩散。(i)和(ii)的贡献随惰性气体分子的动力学直径和温度范围而变化。最小的Ar的最低单一活化能垒表明原子通过两条途径的扩散相等。相反,对于中等大小的Kr,我们解析了两种平行传输机制的贡献,这暂时可归因于通过通道状孔的迁移路径的较小能垒以及通过这些通道之间狭窄孔径扩散的较高能垒。最大的Xe原子仅沿一维通道扩散,并显示出最高的单一活化能垒。