Department of Chemical Engineering, School of Chemical and Materials Engineering (SCME), National University of Sciences and Technology (NUST), Sector H-12, Islamabad, Pakistan.
School of Engineering, Institute for Materials and Processes, The University of Edinburgh, Edinburgh, EH9 3FB, Scotland, UK.
Environ Sci Pollut Res Int. 2023 Oct;30(50):109453-109468. doi: 10.1007/s11356-023-30029-2. Epub 2023 Sep 29.
Mixed matrix membranes (MMMs) containing metal-organic frameworks (MOFs) have been an emerging and promising membrane technology to contribute to different gas separation applications including carbon dioxide (CO) and oxygen (O) separation, because of their large surface areas and distinctive gas adsorption features. In this work, the fabrication process of Polydimethylsiloxane (PDMS)-based MMMs was reported, in which 0.5 to 2 wt.% of each type of (Cu, Ni)-based MOF-74 variants were incorporated into a PDMS matrix in order to achieve high CO/N, O/N, and CO/O separation efficiency. These MMMs and their nanofillers (MOF-74) were extensively characterized using scanning electron microscopy (SEM) along with Energy Dispersive X-Ray (EDX) mapping, X-ray Diffraction (XRD), Fourier-transform infrared spectroscopy (FT-IR), a single gas permeation testing system, and an ultimate tensile strength testing (UTS) unit in order to gain insight into their properties in relation to their gas separation performance. The 1 wt.% of both (Cu and Ni)-MOF-74@PDMS were selected as the most optimum MMMs due to their uniform morphology and enhanced tensile strength, which exhibited high CO permeabilities of 4432 Barrer (37.9% increase) and 4288 Barrer (33.5% increase), respectively. Furthermore, in the case of 1 wt.% Ni-MOF-74@PDMS, the CO/N, O/N, and CO/O selectivities were also enhanced to 36.2 (141.6% increase), 3.2 (21.9% increase), and 11.25 (98.1% increase), respectively. While, in the case of 1 wt.% Cu-MOF-74@PDMS the CO/N and O/N selectivities showed an increment up-to 94.7 (531.5% increase) and 6.47 (145% increase), respectively, Whereas, at 0.5 wt.%, Cu-MOF-74@PDMS showed the best CO/O selectivity of 25.26 (344.7% increase).
含金属有机骨架(MOFs)的混合基质膜(MMMs)是一种新兴的、有前途的膜技术,可用于多种气体分离应用,包括二氧化碳(CO)和氧气(O)分离,因为它们具有较大的比表面积和独特的气体吸附特性。在这项工作中,报道了基于聚二甲基硅氧烷(PDMS)的 MMMs 的制造工艺,其中将 0.5 至 2wt.%的每种(Cu,Ni)基 MOF-74 变体掺入 PDMS 基质中,以实现高 CO/N、O/N 和 CO/O 分离效率。这些 MMMs 和它们的纳米填料(MOF-74)使用扫描电子显微镜(SEM)以及能量色散 X 射线(EDX)映射、X 射线衍射(XRD)、傅里叶变换红外光谱(FT-IR)、单气体渗透测试系统和最终拉伸强度测试(UTS)单元进行了广泛的表征,以深入了解它们的性能与其气体分离性能的关系。由于其均匀的形态和增强的拉伸强度,1wt.%的(Cu 和 Ni)-MOF-74@PDMS 被选为最佳的 MMMs,其 CO 渗透率分别为 4432 Barrer(增加 37.9%)和 4288 Barrer(增加 33.5%)。此外,在 1wt.%Ni-MOF-74@PDMS 的情况下,CO/N、O/N 和 CO/O 的选择性也分别提高到 36.2(增加 141.6%)、3.2(增加 21.9%)和 11.25(增加 98.1%)。而在 1wt.%Cu-MOF-74@PDMS 的情况下,CO/N 和 O/N 的选择性分别增加到 94.7(增加 531.5%)和 6.47(增加 145%),而在 0.5wt.%时,Cu-MOF-74@PDMS 表现出最佳的 CO/O 选择性为 25.26(增加 344.7%)。