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将极性基团固定在超微孔金属有机骨架中,实现具有基准意义的 CO/CH 反向选择性分离,创下 CH 产量的新纪录。

Immobilization of the Polar Group into an Ultramicroporous Metal-Organic Framework Enabling Benchmark Inverse Selective CO/CH Separation with Record CH Production.

机构信息

School of Materials Science and Engineering, National Institute for Advanced Materials, Nankai University, Tianjin 300350, China.

Van 't Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, The Netherlands.

出版信息

J Am Chem Soc. 2023 Jun 28;145(25):13901-13911. doi: 10.1021/jacs.3c03265. Epub 2023 Jun 13.

Abstract

One-step harvest of high-purity light hydrocarbons without the desorption process represents an advanced and highly efficient strategy for the purification of target substances. The separation and purification of acetylene (CH) from carbon dioxide (CO) by CO-selective adsorbents are urgently demanded yet are very challenging owing to their similar physicochemical properties. Here, we employ the pore chemistry strategy to adjust the pore environment by immobilizing polar groups into an ultramicroporous metal-organic framework (MOF), achieving one-step manufacture of high-purity CH from CO/CH mixtures. Embedding methyl groups into prototype stable MOF (Zn-ox-trz) not only changes the pore environment but also improves the discrimination of guest molecules. The methyl-functionalized thus exhibits the benchmark reverse CO/CH uptake ratio of 12.6 (123.32/9.79 cm cm) and an exceptionally high equimolar CO/CH selectivity of 1064.9 at ambient conditions. Molecular simulations reveal that the synergetic effect of pore confinement and surfaces decorated with methyl groups provides high recognition of CO molecules through multiple van der Waals interactions. The column breakthrough experiments suggest that -- dramatically achieved the one-step purification capacity of CH from the CO/CH mixture with a record CH productivity of 2091 mmol kg, surpassing all of the CO-selective adsorbents reported so far. In addition, -- exhibits excellent chemical stability under different pH values of aqueous solutions (pH = 1-12). Moreover, the highly stable framework and excellent inverse selective CO/CH separation performance showcase its promising application as a CH splitter for industrial manufacture. This work paves the way to developing reverse-selective adsorbents for the challenging gas separation process.

摘要

一步法从混合物中直接高效地提取高纯度轻烃而无需解吸过程,代表了一种先进且高效的目标物质提纯策略。由于其相似的物理化学性质,通过 CO 选择性吸附剂从二氧化碳(CO)中分离和提纯乙炔(CH)是非常有必要的,但也极具挑战性。在此,我们采用孔化学策略,通过将极性基团固定在超微孔金属有机骨架(MOF)中,来调节孔环境,从而实现从 CO/CH 混合物中一步法制造高纯度 CH。将甲基基团嵌入到原型稳定的 MOF(Zn-ox-trz)中不仅改变了孔环境,而且提高了客体分子的区分能力。因此,功能化的 表现出了基准的反向 CO/CH 吸收比 12.6(123.32/9.79 cm cm)和在环境条件下异常高的等摩尔 CO/CH 选择性 1064.9。分子模拟表明,孔限制和表面上的甲基基团的协同作用通过多个范德华相互作用提供了对 CO 分子的高识别能力。柱穿透实验表明,- 从 CO/CH 混合物中一步法实现了 CH 的高纯度提纯能力,CH 的生产率高达 2091 mmol kg,超过了迄今为止报道的所有 CO 选择性吸附剂。此外,- 在不同 pH 值的水溶液(pH = 1-12)中都表现出优异的化学稳定性。此外,高度稳定的骨架和优异的反向选择性 CO/CH 分离性能展示了其作为工业制造中 CH 分离器的应用前景。这项工作为开发具有挑战性的气体分离过程的反向选择性吸附剂铺平了道路。

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