Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China.
Van' t Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, Amsterdam, 1098 XH, The Netherlands.
Adv Mater. 2017 Jul;29(28). doi: 10.1002/adma.201606929. Epub 2017 May 31.
The efficient capture of SO is of great significance in gas-purification processes including flue-gas desulfurization and natural-gas purification, but the design of porous materials with high adsorption capacity and selectivity of SO remains very challenging. Herein, the selective recognition and dense packing of SO clusters through multiple synergistic host-guest and guest-guest interactions by controlling the pore chemistry and size in inorganic anion (SiF , SIFSIX) pillared metal-organic frameworks is reported. The binding sites of anions and aromatic rings in SIFSIX materials grasp every atom of SO firmly via S ···F electrostatic interactions and O ···H dipole-dipole interactions, while the guest-guest interactions between SO molecules further promote gas trapping within the pore space, which is elucidated by first-principles density functional theory calculations and powder X-ray diffraction experiments. These interactions afford new benchmarks for the highly efficient removal of SO from other gases, even if at a very low SO concentration. Exceptionally high SO capacity of 11.01 mmol g is achieved at atmosphere pressure by SIFSIX-1-Cu, and unprecedented low-pressure SO capacity is obtained in SIFSIX-2-Cu-i (4.16 mmol g SO at 0.01 bar and 2.31 mmol g at 0.002 bar). More importantly, record SO /CO selectivity (86-89) and excellent SO /N selectivity (1285-3145) are also achieved. Experimental breakthrough curves further demonstrate the excellent performance of these hybrid porous materials in removing low-concentration SO .
高效捕集 SO 在包括烟气脱硫和天然气净化在内的气体净化过程中具有重要意义,但设计具有高 SO 吸附容量和选择性的多孔材料仍然极具挑战性。在此,通过控制无机阴离子(SiF6 、SIFSIX)柱撑金属-有机骨架中的孔化学和尺寸,报告了通过多种协同主客体和客体-客体相互作用来选择性识别和密集包装 SO 簇。SIFSIX 材料中的阴离子和芳环的结合位点通过 S···F 静电相互作用和 O···H 偶极-偶极相互作用牢固地抓住 SO 的每个原子,而 SO 分子之间的客体-客体相互作用进一步促进了在孔空间内的气体捕获,这通过第一性原理密度泛函理论计算和粉末 X 射线衍射实验得到了解释。这些相互作用为从其他气体中高效去除 SO 提供了新的基准,即使在 SO 浓度非常低的情况下也是如此。SIFSIX-1-Cu 在大气压下实现了 11.01mmol g 的异常高 SO 容量,在 SIFSIX-2-Cu-i 中获得了前所未有的低压 SO 容量(在 0.01 巴时为 4.16mmol g SO,在 0.002 巴时为 2.31mmol g)。更重要的是,还实现了创纪录的 SO/CO 选择性(86-89)和优异的 SO/N 选择性(1285-3145)。实验突破曲线进一步证明了这些混合多孔材料在去除低浓度 SO 方面的优异性能。