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Topotactic Synthesis of Phosphabenzene‐Functionalized Porous Organic Polymers: Efficient Ligands in CO 2 Conversion
Author(s) -
Yang Zhenzhen,
Chen Hao,
Li Bo,
Guo Wei,
Jie Kecheng,
Sun Yifan,
Jiang Deen,
Popovs Ilja,
Dai Sheng
Publication year - 2019
Publication title -
angewandte chemie
Language(s) - English
Resource type - Journals
eISSN - 1521-3757
pISSN - 0044-8249
DOI - 10.1002/ange.201907015
Subject(s) - catalysis , polymer , monomer , phos , chemistry , transition metal , porosity , heterogeneous catalysis , phosphorus , chemical engineering , polymer chemistry , organic chemistry , biochemistry , engineering
Progress toward the preparation of porous organic polymers (POPs) with task‐specific functionalities has been exceedingly slow—especially where polymers containing low‐oxidation phosphorus in the structure are concerned. A two‐step topotactic pathway for the preparation of phosphabenzene‐based POPs (Phos‐POPs) under metal‐free conditions is reported, without the use of unstable phosphorus‐based monomers. The synthetic route allows additional functionalities to be introduced into the porous polymer framework with ease. As an example, partially fluorinated Phos‐POPs (F‐Phos‐POPs) were obtained with a surface area of up to 591 m 2 g −1 . After coordination with Ru species, a Ru/F‐Phos‐POPs catalyst exhibited high catalytic efficiency in the formylation of amines (turnover frequency up to 204 h −1 ) using a CO 2 /H 2 mixture, in comparison with the non‐fluorinated analogue (43 h −1 ) and a Au/TiO 2 heterogeneous catalysts reported previously (<44 h −1 ). This work describes a practical method for synthesis of porous organic phosphorus‐based polymers with applications in transition‐metal‐based heterogeneous catalysis.
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