Beijing Key Laboratory for Green Catalysis and Separation and Department of Environmental Chemical Engineering, Beijing University of Technology, Beijing, China.
The Key Laboratory of Advanced Functional Materials, Ministry of Education, Faculty of Materials and Manufacturing, Beijing University of Technology, Beijing, China.
Nat Mater. 2022 Jun;21(6):689-695. doi: 10.1038/s41563-022-01237-x. Epub 2022 Apr 28.
In principle, porous physisorbents are attractive candidates for the removal of volatile organic compounds such as benzene by virtue of their low energy for the capture and release of this pollutant. Unfortunately, many physisorbents exhibit weak sorbate-sorbent interactions, resulting in poor selectivity and low uptake when volatile organic compounds are present at trace concentrations. Herein, we report that a family of double-walled metal-dipyrazolate frameworks, BUT-53 to BUT-58, exhibit benzene uptakes at 298 K of 2.47-3.28 mmol g at <10 Pa. Breakthrough experiments revealed that BUT-55, a supramolecular isomer of the metal-organic framework Co(BDP) (HBDP = 1,4-di(1H-pyrazol-4-yl)benzene), captures trace levels of benzene, producing an air stream with benzene content below acceptable limits. Furthermore, BUT-55 can be regenerated with mild heating. Insight into the performance of BUT-55 comes from the crystal structure of the benzene-loaded phase (CH@BUT-55) and density functional theory calculations, which reveal that C-H···X interactions drive the tight binding of benzene. Our results demonstrate that BUT-55 is a recyclable physisorbent that exhibits high affinity and adsorption capacity towards benzene, making it a candidate for environmental remediation of benzene-contaminated gas mixtures.
原则上,多孔物理吸附剂由于其捕获和释放这种污染物的能量低,是去除苯等挥发性有机化合物的有吸引力的候选物。不幸的是,许多物理吸附剂表现出较弱的吸附剂-吸附剂相互作用,导致挥发性有机化合物以痕量浓度存在时选择性差和吸附量低。在此,我们报告了一系列双壁金属-二吡唑酯骨架,BUT-53 至 BUT-58,在 298 K 下对苯的吸附量为 2.47-3.28 mmol g-1 在 <10 Pa 下。突破实验表明,BUT-55,一种金属有机骨架 Co(BDP)(HBDP=1,4-二(1H-吡唑-4-基)苯)的超分子异构体,捕获痕量的苯,产生苯含量低于可接受限值的空气流。此外,BUT-55 可以通过温和加热再生。BUT-55 性能的洞察力来自于负载苯相(CH@BUT-55)的晶体结构和密度泛函理论计算,这表明 C-H···X 相互作用驱动苯的紧密结合。我们的结果表明,BUT-55 是一种可回收的物理吸附剂,对苯表现出高亲和力和吸附能力,使其成为环境修复苯污染气体混合物的候选物。