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基于超交联煤焦油的微孔有机聚合物:制备及其在气体吸附中的应用

Microporous Organic Polymers Based on Hyper-Crosslinked Coal Tar: Preparation and Application for Gas Adsorption.

作者信息

Gao Hui, Ding Lei, Bai Hua, Li Lei

机构信息

Department of Materials Science and Engineering, College of Materials, Xiamen University, Xiamen, 361005, P. R. China.

Key Laboratory of Synthetic and Self-Assembly Chemistry for Organic Functional Molecules, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 345 Lingling Road, Shanghai, 200032, P. R. China.

出版信息

ChemSusChem. 2017 Feb 8;10(3):618-623. doi: 10.1002/cssc.201601475. Epub 2017 Jan 9.

Abstract

Hyper-crosslinked polymers (HCPs) are promising materials for gas capture and storage, but high cost and complicated preparation limit their practical application. In this paper, a new type of HCPs (CTHPs) was synthesized through a one-step mild Friedel-Crafts reaction with low-cost coal tar as the starting material. Chloroform was utilized as both solvent and crosslinker to generate a three-dimensional crosslinked network with abundant micropores. The maximum BET surface area of the prepared CTHPs could reach up to 929 m  g . Owing to the high affinity between the heteroatoms on the coal-tar building blocks and the CO molecules, the adsorption capacity of CTHPs towards CO reached up to 14.2 wt % (1.0 bar, 273 K) with a high selectivity (CO /N =32.3). Furthermore, the obtained CTHPs could adsorb 1.27 wt % H at 1.0 bar and 77.3 K, and also showed capacity for the capture of high organic vapors at room temperature. In comparison with other reported porous organic polymers, CTHPs have the advantages of low-cost, easy preparation, and high gas-adsorption performance, making them suitable for mass production and practical use in the future.

摘要

超交联聚合物(HCPs)是用于气体捕获和存储的有前景的材料,但高成本和复杂的制备过程限制了它们的实际应用。本文以低成本煤焦油为起始原料,通过一步温和的傅克反应合成了一种新型的HCPs(CTHPs)。氯仿既用作溶剂又用作交联剂,以生成具有丰富微孔的三维交联网络。制备的CTHPs的最大比表面积可达929 m²/g。由于煤焦油结构单元上的杂原子与CO分子之间具有高亲和力,CTHPs对CO的吸附容量在1.0 bar、273 K时可达14.2 wt%,且具有高选择性(CO/N₂ = 32.3)。此外,所获得的CTHPs在1.0 bar和77.3 K下可吸附1.27 wt%的H₂,并且在室温下也显示出捕获高有机蒸汽的能力。与其他报道的多孔有机聚合物相比,CTHPs具有低成本、易于制备和高气体吸附性能的优点,使其适合未来的大规模生产和实际应用。

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