Enhancing Gas Separation Performance of Polyvinyl Alcohol Membranes through Cyclodextrin-Based Additives: An Experimental Study on Permeability and Selectivity Analysis

نویسندگان

1 Faculty of Life Science Engineering, College of Interdisciplinary Science and Technology, University of Tehran, Tehran, I.R. IRAN

2 Faculty of Life Science Engineering, College of Interdisciplinary Science and Technology, University of Tehran, Tehran, I.R. IRAN

3 School of Chemical, Petroleum and Gas Engineering, Iran University of Science and Technology, Tehran, I.R. IRAN

4 Faculty of Life Science Engineering, College of Interdisciplinary Science and Technology, University of Tehran, Tehran, I.R. IRAN

doi
10.30492/ijcce.2025.2060866.7120
چکیده

Polyvinyl alcohol (PVA)-based membranes modified with cyclodextrins (CDs) and rotaxanes were developed to overcome the permeability-selectivity trade-off in gas separation. This study demonstrates that α-CD incorporation (2–10 wt%) in PVA significantly enhances CO₂/CH₄ selectivity (up to 2,898) and CO₂ permeability (57.8 Barrer), attributed to the molecular sieving effect of α-CD’s cavity diameter of 4.7–5.3 Å, as supported by kinetic diameter alignment. Illustrating the classic trade-off, increasing α-CD content from 2% to 10% boosted selectivity from 289 to 2,898, while permeability decreased from 57.8 to 28.98 Barrer (a permeance drop from 0.48 to 0.24 GPU). In contrast, γ-CD-modified membranes achieve exceptional O₂/N₂ selectivity (1,108) due to their larger cavity diameter 7.5–8.5 (Å), while rotaxane nanotubes create non-selective transport pathways, yielding ultrahigh N₂ permeability (56.03 Barrer) but inverted O₂/N₂ selectivity (0.23). The distinct transport mechanisms—solution-diffusion dominance in CD-PVA systems versus pore-flow in rotaxane-modified membranes—were validated through permeation tests and structural characterization. α-CD membranes show promise for biogas upgrading (CO₂/CH₄ selectivity >2,800), whereas γ-CD variants excel in oxygen enrichment. Rotaxane-modified membranes enable high-flux applications like inert gas production. This work advances the design of tunable membrane materials by correlating additive topology (CD cavity size, rotaxane nanotubularity) with gas separation performance, offering pathways to address industrial challenges in CO₂ capture, O₂/N₂ separation, and hydrocarbon purification.