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Direct quantification of surface barriers for mass transfer in nanoporous crystalline materials

机译:纳米多孔晶体材料中传质表面屏障的直接定量

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Mass transfer of guest molecules in nanoporous crystalline materials has gained attention in catalysis, separation, electrochemistry, and other fields. Two mechanisms, surface barriers and intracrystalline diffusion, dominate the mass transport process. Lack of methods to separately quantify these two mechanisms restricts further understanding and thus rational design and efficient application of nanoporous materials. Here we derive an approximate expression of uptake rate relying solely on surface permeability, offering an approach to directly quantify surface barriers and intracrystalline diffusion. By use of this approach, we study the diffusion in zeolitic materials, and find that the intracrystalline diffusivity is intrinsic to the topological structure of host materials at low molecular loading for the given guest molecules, while the surface permeability is sensitive to the non-ideality of a crystalline surface owing to the physical and chemical properties of the crystalline surface, host–guest interaction at the surface, and change of the environment. Mass transfer of guest molecules in nanoporous crystalline materials is dominated by surface barriers and intracrystalline diffusion. Here the authors derive an approximate expression of uptake rate relying solely on surface permeability, offering an approach to directly quantify both effects.
机译:纳米多孔晶体材料中的客体分子的传质在催化,分离,电化学和其他领域中受到关注。两个机制,表面屏障和脑啡肽扩散,主导质量传输过程。缺乏分别量化这两个机制的方法限制了进一步的理解,从而制造了纳米多孔材料的理性设计和有效应用。在这里,我们得出了依赖于表面渗透性的摄取率的近似表达,提供了一种直接量化表面屏障和脑啡肽扩散的方法。通过使用这种方法,我们研究了沸石材料中的扩散,并发现内丙氨酸的扩散性在给定的客体分子的低分子负载下的主体材料的拓扑结构,而表面渗透性对非理想性敏感由于晶体表面的物理和化学性质,表面的宿主互动以及环境变化的晶体表面。纳米多孔晶体材料中的客体分子的传质是由表面屏障和脑啡肽扩散的主导。在这里,作者导出了仅依赖于表面渗透率的摄取率的近似表达,提供了一种直接量化两种效果的方法。

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