合成和优化三维多孔聚合物,实现高效二氧化碳捕获和 H2 封存

Rawan A. Al-Qahtani , Mahmoud M. Abdelnaby , Ismail Abdulazeez , Othman Charles S. Al-Hamouz
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引用次数: 0

摘要

本研究通过三庚烯和 2,2-联吡啶的 Friedel-Crafts 烷基化反应,优化合成了一种新型多孔有机聚合物(KFUPM-CO2),其固有氮原子是捕获二氧化碳的活性位点。经 NLDFT 证实,这种多孔聚合物具有 1100 m2/g 的高表面积和小于 1.2 nm 的调谐微孔。KFUPM-CO2 在 273 K 和 298 K 条件下的二氧化碳吸附容量分别为 5.6 mmol/g和 3.2 mmol/g,在 760 mmHg 的压力下,KFUPM-CO2 对二氧化碳的吸附焓分别为 43.7 kJ/mol,在模拟烟道气成分中,273 K 和 298 K 条件下的 IAST CO2/N2 选择性分别为 127 和 97。此外,KFUPM-CO2 在 77 K 和 860 mmHg 条件下的 H2 储量为 1.5 wt. %,大规范蒙特卡洛(GCMC)模拟进一步表明,KFUPM-CO2 主要通过 π-π 分子内相互作用而稳定,并通过吡啶基氮原子对 CO2 分子表现出强烈的范德华吸引力,从而实现了快速吸收。将 2,2-联吡啶与三庚烯结合在一起的综合优势提供了一种具有丰富氮位点、永久孔隙度和热稳定性的坚固多孔聚合物,使 KFUPM-CO2 成为二氧化碳捕获和 H2 储存技术的绝佳候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synthesis and optimization of 3D porous polymers for efficient CO2 capture and H2 storage

Synthesis and optimization of 3D porous polymers for efficient CO2 capture and H2 storage
In this study, a new porous organic polymer (KFUPM-CO2) with intrinsic nitrogen atoms as active sites for CO2 capture was optimized and synthesized via Friedel-Crafts alkylation of triptycene and 2,2-bipyridine. The porous polymer shows a high surface area of 1100 m2/g with a tuned microporosity of less than 1.2 nm, confirmed by NLDFT. KFUPM-CO2 showed a remarkable CO2 sorption capacity of 5.6 mmol/g at 273 K, 3.2 mmol/g at 298 K, and a pressure of 760 mmHg KFUPM-CO2 showed a high enthalpy of adsorption of 43.7 kJ/mol for CO2 with IAST selectivity of CO2/N2 of 127 at 273 K and 97 at 298 K on simulated flue gas composition. Additionally, KFUPM-CO2 exhibited an H2 storage capacity of 1.5 wt. % at 77 K and 860 mmHg Grand Canonical Monte Carlo (GCMC) simulations further revealed that KFUPM-CO2 was mainly stabilized by π-π intra-molecular interactions, and exhibited strong van der Waals attractions to CO2 molecules via the pyridyl nitrogen atoms, resulting in the rapid uptake. The combined advantages of binding 2,2-bipyridine with triptycene provided a robust porous polymer with abundant nitrogen sites, permanent porosity, and thermal stability, rendering KFUPM-CO2 an excellent candidate for CO2 capture and H2 storage technologies.
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