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Pebax/Modified Cellulose Nanofiber Composite Membranes for Highly Enhanced CO2/CH4 Separation
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Metadata
Document Title
Pebax/Modified Cellulose Nanofiber Composite Membranes for Highly Enhanced CO2/CH4 Separation
Author
Narkkun T. Kraithong W. Ruangdit S. Klaysom C. Faungnawakij K. Itthibenchapong V.
Affiliations
National Nanotechnology Center (NANOTEC) National Science and Technology Development Agency (NSTDA) Pathum Thani 12120 Thailand; Center of Excellence in Particle and Material Processing Technology Department of Chemical Engineering Faculty of Engineering Chulalongkorn University Bangkok 10330 Thailand
Type
Article
Source Title
ACS Omega
ISSN
24701343
Year
2023
Volume
8
Issue
48
Page
45428-45437
Open Access
All Open Access Gold
Publisher
American Chemical Society
DOI
10.1021/acsomega.3c04800
Abstract
This work explored the use of biomass-derived cellulose nanofibers as an additive to enhance the separation performance of Pebax membranes for the removal of CO2 from biogas. Succinate functional groups were modified on the cellulose nanofiber (SCNF) to incorporate more CO2-attracting functional groups before they were added to the polymer matrix. A small addition of SCNF up to 0.5 wt % had no significant impact on the polymer chain packing of Pebax but significantly enhanced the tensile strength and separation performance in both CO2 permeability and CO2/CH4 selectivity. On the other hand increasing the SCNF addition amount above 1 wt % resulted in a slight alternation of membrane microstructure i.e. lowering crystallinity stiffer structure and reduced tensile strength. At high loading the CO2 permeability and CO2/CH4 selectivity of the composite membrane were however found to decline. This behavior is explained by a greater propensity for interaction among the CO2-attracting functional groups of SCNF and Pebax at elevated SCNF loadings leading to fewer functional groups available for CO2 sorption. The optimal 0.5% SCNF loading (Pebax/SCNF-0.5) demonstrated a CO2 permeability of 263.8 Barrer and selectivity of 19.9 under 4 bar pressure and an operating temperature of 30 ?C. These separation performances increased by 29.69% permeability and 39.04% selectivity compared with those of pure Pebax. These highly impressive results corresponded to the increases in the levels of CO2 dissolution and diffusion via hydrophilic SCNF nanofillers in Pebax. This work could strongly advance the research and development of gas separation technology based on polymeric membranes with the utilization of biobased nanofillers for energy and environmental sectors. ? 2023 The Authors. Published by American Chemical Society
License
CC BY-NC-ND
Rights
Authors
Publication Source
WOS