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通过一步超酸催化反应直接整合功能化桥连以制备用于CO捕集与分离的多孔聚合物。

Direct Integration of Functionalized Bridges by One-Step Superacid-Catalyzed Reaction to Fabricate Porous Polymers for CO Capture and Separation.

作者信息

Perego Jacopo, Piva Sergio, Bezuidenhout Charl Xavier, Comotti Angiolina, Sozzani Piero, Bracco Silvia

机构信息

Department of Materials Science and INSTM Research Unit, University of Milano-Bicocca, Via R. Cozzi 55, Milan, 20125, Italy.

出版信息

Angew Chem Int Ed Engl. 2025 Aug 4;64(32):e202507863. doi: 10.1002/anie.202507863. Epub 2025 Jun 17.

Abstract

A novel class of ultra-microporous functionalized porous organic polymers (POPs) was developed starting from glyoxylic acid as a cross-linker and triflic acid as a catalyst on polyaromatic monomers, generating in situ methine bridges with carboxylic acids. This one-pot synthetic method generated functionalized POPs with high connectivity per each aromatic group and a high density of aliphatic carboxylic acids decorating the pore walls. Remarkably, the functional groups were transformed into esters, Na- and Li-carboxylates by post-synthetic modification with high yields, generating polyionic porous polymers. These porous polymers displayed excellent CO adsorption at 298 K and isosteric heat of adsorption with values as high as 50 kJ mol for the Na-containing POP endowed with numerous ionic charges, as estimated by direct measurements with microcalorimetry coupled to CO adsorption isotherms. Dynamic breakthrough experiments on self-supporting monolithic composites demonstrated high selectivity for CO adsorption over N up to 500 for diluted streams and 340 under relevant conditions for carbon capture from flue gases (0.15 CO partial pressure).

摘要

从乙醛酸作为交联剂和三氟甲磺酸作为多芳族单体上的催化剂出发,开发了一类新型的超微孔功能化多孔有机聚合物(POPs),在原位生成带有羧酸的次甲基桥。这种一锅法合成方法生成了每个芳族基团具有高连接性且孔壁装饰有高密度脂肪族羧酸的功能化POPs。值得注意的是,通过后合成修饰,官能团以高产率转化为酯、羧酸钠和羧酸钾,生成聚离子多孔聚合物。这些多孔聚合物在298 K下表现出优异的CO吸附性能,通过与CO吸附等温线耦合的微量热法直接测量估计,对于具有大量离子电荷的含钠POP,其等量吸附热高达50 kJ/mol。对自支撑整体复合材料的动态突破实验表明,对于稀释气流,CO吸附对N的选择性高达500,在从烟道气中捕获碳的相关条件下(0.15 CO分压),选择性为340。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76c5/12322657/bff00605d1fc/ANIE-64-e202507863-g003.jpg

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