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用于高选择性和灵敏性苯捕获的孔空间分区金属有机框架中孔径和形状的多阶段优化

Multi-Stage Optimization of Pore Size and Shape in Pore-Space-Partitioned Metal-Organic Frameworks for Highly Selective and Sensitive Benzene Capture.

作者信息

Chen Yichong, Wang Wei, Alston Samuel, Xiao Yuchen, Ajayan Pooja, Bu Xianhui, Feng Pingyun

机构信息

Department of Chemistry, University of California, Riverside, 900 University Ave, Riverside, CA-92521, United States.

Department of Chemistry and Biochemistry, California State University, Long Beach 1250 Bellflower Blvd, Long Beach, CA-90840, United States.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 15;64(3):e202415576. doi: 10.1002/anie.202415576. Epub 2024 Oct 31.

Abstract

Compared to exploratory development of new structure types, pushing the limits of isoreticular synthesis on a high-performance MOF platform may have higher probability of achieving targeted properties. Multi-modular MOF platforms could offer even more opportunities by expanding the scope of isoreticular chemistry. However, navigating isoreticular chemistry towards best properties on a multi-modular platform is challenging due to multiple interconnected pathways. Here on the multi-modular pacs (partitioned acs) platform, we demonstrate accessibility to a new regime of pore geometry using two independently adjustable modules (framework-forming module 1 and pore-partitioning module 2). A series of new pacs materials have been made. Benzene/cyclohexane selectivity is tuned, progressively, from 4.5 to 15.6 to 195.4 and to 482.5 by pushing the boundary of the pacs platform towards the smallest modules known so far. The exceptional stability of these materials in retaining both porosity and single crystallinity enables single-crystal diffraction studies of different crystal forms (as-synthesized, activated, guest-loaded) that help reveal the mechanistic aspects of adsorption in pacs materials.

摘要

与探索新型结构类型的开发相比,在高性能金属有机框架(MOF)平台上拓展同构合成的极限可能更有机会实现目标性能。多模块MOF平台可以通过扩大同构化学的范围提供更多机会。然而,由于存在多个相互关联的途径,在多模块平台上引导同构化学以实现最佳性能具有挑战性。在此,在多模块pacs(分区acs)平台上,我们展示了使用两个独立可调模块(框架形成模块1和孔分区模块2)获得新的孔几何结构状态的可行性。已制备了一系列新型pacs材料。通过将pacs平台的边界推向目前已知的最小模块,苯/环己烷选择性逐步从4.5调至15.6、再到195.4,最后达到482.5。这些材料在保持孔隙率和单晶性方面具有出色的稳定性,这使得能够对不同晶体形式(合成态、活化态、客体负载态)进行单晶衍射研究,有助于揭示pacs材料中吸附的机理。

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