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通过烯烃侧基的后合成转化对金属有机骨架进行功能化。

Functionalization of metal-organic frameworks through the postsynthetic transformation of olefin side groups.

机构信息

Wacker Lehrstuhl für Makromolekulare Chemie, Technische Universität München, Lichtenbergstrasse 4, 85747 Garching, Germany.

出版信息

Chemistry. 2013 Jun 17;19(25):8244-52. doi: 10.1002/chem.201300477. Epub 2013 May 2.

Abstract

For the first time, the adaptability of the C=C double bond as a versatile precursor for the postsynthetic modification (PSM) of microporous materials was extensively investigated and evaluated. Therefore, an olefin-tagged 4,4'-bipyridine linker was synthesized and successfully introduced as pillar linker within a 9,10-triptycenedicarboxylate (TDC) zinc paddle-wheel metal-organic framework (MOF) through microwave-assisted synthesis. Different reactions, predominately used in organic chemistry, were tested, leading to the development of new postsynthetic reactions for the functionalization of solid materials. The postsynthetic oxidation of the olefin side groups applying osmium tetroxide (OsO₄) as a catalyst led to the formation of a microporous material with free vicinal diol functionalities. The epoxidation with dimethyldioxirane (DMDO) enabled the synthesis of epoxy-functionalized MOFs. In addition to that, reaction procedures for a postsynthetic hydroboration with borane dimethyl sulfide as well as a photoinduced thiol-ene click reaction with ethyl mercaptan were developed. For all of these PSMs, yields of more than 90% were obtained, entirely maintaining the crystallinity of the MOFs. Since the direct introduction of the corresponding groups by means of pre-synthetic approaches is hardly possible, these new PSMs are useful tools for the functionalization of porous solids towards applications such as selective adsorption, separation, and catalysis.

摘要

首次广泛研究和评估了 C=C 双键作为多功能后合成修饰(PSM)微孔材料前体的适应性。因此,合成了带有烯烃标记的 4,4'-联吡啶连接体,并通过微波辅助合成成功地将其作为支柱连接体引入 9,10-三联苯二甲酸(TDC)锌桨轮金属有机骨架(MOF)中。测试了不同的反应,这些反应主要用于有机化学,从而开发了用于功能化固体材料的新的后合成反应。使用四氧化锇(OsO4)作为催化剂对烯烃侧基进行后氧化,形成具有游离顺式二醇官能团的微孔材料。用过氧化二甲醚(DMDO)进行环氧化,可合成环氧官能化的 MOF。此外,还开发了硼烷二甲硫醚的后合成硼氢化反应程序以及乙基巯基的光诱导硫醇-烯点击反应程序。对于所有这些 PSM,产率都超过 90%,完全保持了 MOF 的结晶度。由于通过预合成方法直接引入相应的基团几乎是不可能的,因此这些新的 PSM 是用于功能化多孔固体的有用工具,例如选择性吸附、分离和催化。

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