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March 16, 2026Industrial & Engineering Chemistry Research1 citations

Preoxidation Enables Enhanced Separation Performance in Cellulose-Derived Carbon Molecular Sieve Membranes for CO 2 Removal from Natural Gas

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XMXinru MengXZXin ZhuKLKun Li

Key Points

  • The research aims to improve CO2 permeability and selectivity in cellulose-derived carbon molecular sieve membranes.
  • Proposed preoxidation strategy to modify cellulose structure.
  • Cleaved hydrogen bonds and glycosidic linkages during preoxidation.
  • Formed a cross-linked network with oxygen-containing functional groups.
  • Evaluated separation performance under high-pressure gas conditions.
  • Achieved CO2 permeability of 1026 Barrer, approximately three times higher than untreated membranes.
  • Maintained a CO2/CH4 selectivity of 110.
  • Demonstrated stable operation for over 100 hours with a separation factor of ∼130.

Abstract

Cellulose-based carbon molecular sieve (CMS) hollow fiber membranes show promising potential for natural gas sweetening, owing to their low cost, high CO2/CH4 selectivity, robust mechanical stability, and resistance to plasticization. However, the dense and highly crystalline structure of cellulose usually leads to a relatively low CO2 permeability in cellulose-derived CMS membranes. In this work, we propose a preoxidation strategy for cellulose to construct a cross-linked network. During preoxidation, hydrogen bonds and partial glycosidic linkages in the cellulose chains were cleaved, while hydroxyl groups were oxidized to oxygen-containing functional groups such as carboxyl and aldehyde groups. These subsequently formed an ester-bond cross-linked network. This approach effectively suppressed excessive shrinkage of the membranes during carbonization, thereby preserving a more open porous structure. As a result, the obtained hollow fiber CMS membranes exhibited a significant increase in CO2 permeability, reaching 1026 Barrer (approximately 3 times higher than that of untreated membranes) while maintaining a high CO2/CH4 selectivity of 110. Furthermore, the separation performance was evaluated under high-pressure mixed-gas conditions (10% CO2/90% CH4). The CMS hollow fiber membranes demonstrated stable operation for over 100 h with a CO2/CH4 separation factor of ∼130, highlighting their potential for practical application in natural gas sweetening. This method is facile and provides an effective solution for the performance enhancement and structural design of cellulose-based separation membranes.

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Cite This Study

Meng et al. (2026) studied this question.

synapsesocial.com/papers/69b79df38166e15b153ab200https://doi.org/10.1021/acs.iecr.5c05377
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