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    MOFs基混合基质膜碳捕集研究进展

    Research progress on MOFs-Based Mixed Matrix Membrane carbon capture

    • 摘要: 气体分离膜技术凭借其运行能耗低、无相变过程及环境友好特性,已成为传统分离工艺的替代方案。特别是在“碳中和”战略背景下,开发高效碳捕集技术对减缓气候变化具有关键意义。金属有机框架(MOFs)材料因其独特的结构可设计性与功能多样性,为构建高性能混合基质膜(Mixed Matrix Membranes,MMMs)提供了全新思路,展现出突破“Trade-off”限制的潜力。系统分析了MOFs基MMMs中研究进展,通过将MOFs材料(具有可调孔结构、超高比表面积及多功能性)与聚合物基质的互补结合,突破聚合物膜的性能极限。首先阐释气体分离膜的基本原理及MOFs的理化特性,继而深入解析MOFs基MMMs的设计思路。重点探讨其性能、精准可调的孔径分布及CO2选择性吸附机制。针对碳捕集应用,对比评述了ZIF(Zeolitic Imidazolate Framework)、UiO(University of Oslo)和MIL(Materials of Institute Lavoisier) 3类MOFs的结构-性能关系。通过对比溶液浇铸、原位生长和界面聚合等制备工艺,揭示了MOFs-MMMs构建过程中的关键工艺路径。结合CO2渗透率、选择性系数等核心指标,剖析了界面缺陷形成、纳米粒子团聚等关键挑战。汇总整理了抗老化膜设计、规模化生产成本评估等最新突破,同时指出当前MOFs在规模化应用中面临合成成本高、长期运行稳定性不足、有机-无机界面的相容性较差等问题。最后提出未来需材料科学、化学工程与环境技术等多学科协同创新,推动MOFs-MMMs技术的工业化进程,提供应对气候变化的先进气体分离解决方案。

       

      Abstract: Gas separation membrane technology, with its low energy consumption, phase-change-free process, and environmental friendliness, has become an alternative to traditional separation techniques. Amid the "carbon neutrality" strategy, developing efficient carbon capture tech is crucial for mitigating climate change. Metal - organic frameworks (MOFs), boasting unique structural designability and functional diversity, offer a new approach for creating high - performance mixed matrix membranes (MMMs) and show potential in breaking the "Trade - off" limit.This paper comprehensively analyzes the research progress of MOF - based MMMs. By integrating MOFs, with their tunable pore structures, ultra - high specific surface areas, and multifunctionality, with polymer matrices, the performance limits of polymer membranes can be surpassed. It first explains the basic principles of gas separation membranes and the physicochemical properties of MOFs, then delves into the design concept of MOF - based MMMs. The focus is on their performance, precisely adjustable pore size distribution, and CO2 selective adsorption mechanism. For carbon capture applications, it contrasts and reviews the structure - property relationships of three major MOF classes: ZIF, UiO, and MIL.By comparing preparation processes like solution casting, in - situ growth, and interfacial polymerization, the paper reveals key pathways in constructing MOFs - MMMs. Using core metrics like CO2 permeability and selectivity coefficients, it analyzes critical challenges such as interfacial defect formation and nanoparticle aggregation. The paper also sums up the latest breakthroughs in anti - aging membrane design and cost evaluation for scaled - up production. Meanwhile, it points out issues in MOFs' large - scale application, including high synthesis costs, insufficient long - term stability, and poor organic - inorganic interface compatibility. Finally, the paper suggests that future advancements in MOFs - MMMs technology require collaboration across materials science, chemical engineering, and environmental technology to facilitate industrialization and provide cutting - edge gas separation solutions for climate change mitigation.

       

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