College of Chemical Engineering , Nanjing Tech University , Nanjing 210009 , China.
ACS Appl Mater Interfaces. 2018 Jun 27;10(25):21612-21618. doi: 10.1021/acsami.8b04931. Epub 2018 Jun 14.
UiO-66 (UiO for University of Oslo) is a zirconium-based metal-organic framework with reverse shape selectivity, which gives an alternative way to produce high-purity n-heptane ( nHEP) used for the manufacture of high-purity pharmaceuticals. A couple of studies have shown that UiO-66 gives a high selectivity on the separation of n-/iso-alkanes. However, the microporous structure of UiO-66 causes poor mass transport during the desorption process. In this work, hierarchical-pore UiO-66 (H-UiO-66) was synthesized and utilized as an adsorbent of nHEP and methyl cyclohexane (MCH) for systematically studying the desorption process of n-/iso-alkanes. A suite of physical methods, including X-ray diffraction patterns, verified the UiO-66 structures, and high-resolution transmission electron microscopy showed the existence of hierarchical pores. N adsorption-desorption isotherms further confirmed the size distribution of hierarchical pores in H-UiO-66. Of particular note, the MCH/ nHEP selectivity of H-UiO-66 is similar to that of UiO-66 under the same adsorption conditions, and the desorption process of nHEP/MCH from H-UiO-66 is dramatically enhanced; namely, the desorption rates for nHEP/MCH from H-UiO-66 is enhanced by 30%/23% compared with UiO-66 at most. Moreover, desorption activation energy ( E) derived from temperature-programmed desorption experiments indicate that the E for nHEP/MCH is lower on H-UiO-66; that is, the E of MCH on H-UiO-66 is ∼37% lower than that on UiO-66 at most, leading to a milder condition for the desorption process. The introduction of hierarchical structures will be applicable for the optimization of the desorption process during separation on porous materials.
UiO-66(UiO 代表奥斯陆大学)是一种基于锆的金属有机骨架,具有反形状选择性,为生产用于制造高纯度药物的高纯度正庚烷(nHEP)提供了一种替代方法。有几项研究表明,UiO-66 对正烷烃/异烷烃的分离具有很高的选择性。然而,UiO-66 的微孔结构导致在解吸过程中传质较差。在这项工作中,合成了分级孔 UiO-66(H-UiO-66),并将其用作 nHEP 和甲基环己烷(MCH)的吸附剂,以系统地研究 n-/异烷烃的解吸过程。一系列物理方法,包括 X 射线衍射图,验证了 UiO-66 结构,高分辨率透射电子显微镜显示了分级孔的存在。氮气吸附-解吸等温线进一步证实了 H-UiO-66 中分级孔的尺寸分布。值得注意的是,在相同的吸附条件下,H-UiO-66 对 MCH/nHEP 的选择性与 UiO-66 相似,并且 nHEP/MCH 从 H-UiO-66 中的解吸过程得到显著增强;即,nHEP/MCH 从 H-UiO-66 中的解吸速率比 UiO-66 最多提高了 30%/23%。此外,从程序升温脱附实验得到的脱附活化能(E)表明,nHEP/MCH 在 H-UiO-66 上的 E 较低;也就是说,MCH 在 H-UiO-66 上的 E 最多比 UiO-66 低约 37%,导致解吸过程的条件更温和。分级结构的引入将适用于优化多孔材料分离过程中的解吸过程。