基于分子动力学的改性胺基吸收剂CO2捕集性能及发泡机理研究

Yucong Ge , Zeyu Wang , Li Yang , Xunxuan Heng , Zhenzhen Zhang , Yi Wang , Fang Liu , Xiao Yang , Bo Liu , Kunlei Liu
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引用次数: 0

摘要

高效、可持续的二氧化碳捕集技术是应对全球气候变化的关键;然而,现有的胺基吸收剂在反应效率和能耗方面仍然存在局限性。本研究以脂肪醇聚氧乙烯醚-9 (AEO-9)为表面活性剂,对单乙醇胺(MEA)、二乙醇胺(DEA)和n -甲基二乙醇胺(MDEA)等胺基吸收剂进行了改性。系统地研究了CO2捕集性能、产物积累和分子相互作用机制。结果表明:AEO-9的加入使吸附剂的表面张力降低41.4% ~ 49.1%,发泡性能增强,CO2去除率提高22.3% ~ 41.5%。此外,一些速率胺共混物在发泡后的吸收性能优于纯MEA,这表明它们具有降低能耗和减轻设备腐蚀的潜力。13C NMR和FTIR表征证实了反应产物的形成和积累。分子动力学模拟进一步表明,表面活性剂通过优化溶剂化壳的密度和动力学特性来增强分子间的协同作用。同时,改性体系的氢键长度和键角增加,网络刚性减弱,分子间迁移率提高。本研究展示了泡沫吸收剂在二氧化碳捕集中的潜力,并介绍了一种通过界面调节和微观结构优化来提高吸收性能的新方法,为开发高效、低能耗的碳捕集技术提供了重要的理论和实践见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

CO2 capture performance and foaming mechanism of modified amine-based absorbents: A study based on molecular dynamics

CO2 capture performance and foaming mechanism of modified amine-based absorbents: A study based on molecular dynamics
Efficient and sustainable CO2 capture technologies are key to addressing global climate change; however, existing amine-based absorbents still have limitations in terms of reaction efficiency and energy consumption. This study investigates the modification of amine-based absorbents, including monoethanolamine (MEA), diethanolamine (DEA), and N-methyldiethanolamine (MDEA), using the surfactant Fatty Alcohol Polyoxyethylene Ether-9 (AEO-9). The CO2 capture performance, product accumulation, and molecular interaction mechanisms were systematically examined. The results show that the inclusion of AEO-9 reduces the surface tension of the absorbent by 41.4 %–49.1 %, enhancing the foaming properties and improving CO2 removal efficiency by 22.3 %–41.5 %. Additionally, the absorption performance of some rate-amine blends after foaming is better than pure MEA, suggesting their potential to reduce energy consumption and mitigate equipment corrosion. 13C NMR and FTIR characterization confirmed the formation and accumulation of reaction products. Molecular dynamics simulations further revealed that the surfactant enhances molecular cooperation by optimizing the density and dynamic characteristics of the solvation shell. Meanwhile, the modified system showed increased hydrogen bond length and bond angle, weakening network rigidity and improving intermolecular mobility. This study demonstrates the potential of foaming absorbents in CO2 capture and introduces a novel approach to enhancing absorbent performance through interfacial regulation and microstructural optimization, providing important theoretical and practical insights for the development of efficient, low-energy carbon capture technologies.
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