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具有增强分子筛分性能以实现高效H分离效率的自支撑ZIF-62玻璃MOF膜的设计与开发

Design and Development of a Self-Supporting ZIF-62 Glass MOF Membrane with Enhanced Molecular Sieving for High H Separation Efficiency.

作者信息

Mahdavi Hamidreza, Olorunyomi Joseph F, Eden Nathan T, Doherty Cara M, Acharya Durga, Smith Stefan J D, Mulet Xavier, Hill Matthew R

机构信息

Department of Chemical and Biological Engineering, Monash University, Clayton, Victoria 3800, Australia.

CSIRO Manufacturing, Private Bag 10, Clayton South, Victoria 3169, Australia.

出版信息

ACS Omega. 2025 Feb 10;10(7):7441-7451. doi: 10.1021/acsomega.5c00466. eCollection 2025 Feb 25.

Abstract

The purpose of this study was to design and develop a self-supporting glass MOF membrane (GMM) including its design, fabrication under different heat treatment temperatures, analysis of its physical-chemical properties, and assessment of its separation performance. Glass MOFs preserve metal-ligand bonding structures similar to their crystalline counterparts, providing intrinsic gas separation properties alongside the benefits of amorphous materials, including reduced grain boundaries and ease of processing. In this work, ZIF-62 was melted and then cooled to fabricate GMMs using vitrification to enhance molecular sieving. This study systematically examines the impact of varying thermal treatment temperatures (400-475 °C) on the physical and chemical transformations of GMMs, revealing their effects on the porosity, defect formation, and molecular sieving performance through advanced characterization techniques (e.g., solid-state nuclear magnetic resonance (C NMR), X-ray photoelectron spectroscopy (XPS), He pycnometry, and positron annihilation lifetime spectroscopy (PALS)). The optimal GMM exhibits an impressive separation performance, particularly for H separation. The GMM at 4 bar and 25 °C exhibited He, H, CO, N, and CH gas permeations of 576.37, 509.23, 146.07, 3.45, and 2.28 barrer, respectively. The ideal selectivities of H/CH, CO/N, CO/CH, H/N, and H/CO gas pairs were 223.47, 42.37, 64.10, 147.71, and 3.49, respectively, which significantly exceed earlier reported values for ZIF-62 membranes, demonstrating the significant potential for GMMs as high-performance molecular sieve membranes, particularly for H separation. This work by optimizing the vitrification process through systematic temperature control highlights GMM's ability to achieve high selectivity and permeability, positioning it as a promising candidate for industrial gas separation applications.

摘要

本研究的目的是设计并开发一种自支撑玻璃金属有机框架膜(GMM),包括其设计、在不同热处理温度下的制备、物理化学性质分析以及分离性能评估。玻璃金属有机框架保留了与其晶体对应物相似的金属-配体键合结构,除了具有非晶态材料的优点(包括减少晶界和易于加工)外,还具备内在的气体分离特性。在本工作中,将ZIF-62熔化,然后通过玻璃化冷却来制备GMM,以增强分子筛分性能。本研究系统地考察了不同热处理温度(400 - 475 °C)对GMM物理和化学转变的影响,通过先进的表征技术(如固态核磁共振(C NMR)、X射线光电子能谱(XPS)、氦比重瓶法和正电子湮没寿命谱(PALS))揭示了这些温度对孔隙率、缺陷形成和分子筛分性能的影响。最优的GMM表现出令人印象深刻的分离性能,特别是对于H的分离。在4 bar和25 °C条件下,GMM对He、H、CO、N和CH的气体渗透率分别为576.37、509.23、146.07、3.45和2.28巴每尔。H/CH、CO/N、CO/CH、H/N和H/CO气体对的理想选择性分别为223.47、42.37、64.10、147.71和3.49,显著超过了此前报道的ZIF-62膜的值,证明了GMM作为高性能分子筛膜,特别是用于H分离的巨大潜力。通过系统的温度控制优化玻璃化过程的这项工作突出了GMM实现高选择性和高渗透性的能力,使其成为工业气体分离应用的有前途的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9473/11865976/a256014d0d0f/ao5c00466_0001.jpg

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