PDMS Regulated Growth of Cyclodextrin Polyester Membranes for Natural Gas Dehydration

Abstract Membrane separation is an energy-efficient route for natural gas dehydration, but achieving high water permeance, H2O/CH4 selectivity, and humid-state stability remains challenging. Here, a PDMS-mediated interfacial polymerization strategy was developed to construct ultrathin cyclodextrin-derived polyester selective layers on PES supports. The PDMS interlayer sealed surface pores, regulated monomer diffusion, and enabled the formation of a continuous selective layer of approximately 70 nm. Among α-, β-, and γ-cyclodextrin membranes, the β-CD/TMC membrane showed the best performance, reaching an H2O permeance of 76,423 GPU and an H2O/CH4 selectivity of 78,602. Its superior performance results from the balanced cavity size, hydrophilic oxygen-containing groups, and low transport resistance of the cross-linked polyester layer. The membrane also maintained stable separation under highly humid conditions for 7 days, demonstrating the effectiveness of PDMS-regulated cyclodextrin polyester membranes for natural gas dehydration.

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Publication Details

Journal
Industrial & Engineering Chemistry Research
Published
2026-09-21
DOI
https://doi.org/10.1021/acs.iecr.6c03412
Primary Topic
Membrane Separation and Gas Transport
Type
article
Field-Weighted Citation Impact
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PDMS Regulated Growth of Cyclodextrin Polyester Membranes for Natural Gas Dehydration

Zhongde Dai, Junfeng Zheng, Yikai Wang, Chuanrong Liu et al.
Industrial & Engineering Chemistry Research
Membrane Separation and Gas Transport
article

PDMS Regulated Growth of Cyclodextrin Polyester Membranes for Natural Gas Dehydration

Zhongde Dai, Junfeng Zheng, Yikai Wang, Chuanrong Liu, Zixue Zhao, Tianyi Zhou
article en

Abstract

Abstract Membrane separation is an energy-efficient route for natural gas dehydration, but achieving high water permeance, H2O/CH4 selectivity, and humid-state stability remains challenging. Here, a PDMS-mediated interfacial polymerization strategy was developed to construct ultrathin cyclodextrin-derived polyester selective layers on PES supports. The PDMS interlayer sealed surface pores, regulated monomer diffusion, and enabled the formation of a continuous selective layer of approximately 70 nm. Among α-, β-, and γ-cyclodextrin membranes, the β-CD/TMC membrane showed the best performance, reaching an H2O permeance of 76,423 GPU and an H2O/CH4 selectivity of 78,602. Its superior performance results from the balanced cavity size, hydrophilic oxygen-containing groups, and low transport resistance of the cross-linked polyester layer. The membrane also maintained stable separation under highly humid conditions for 7 days, demonstrating the effectiveness of PDMS-regulated cyclodextrin polyester membranes for natural gas dehydration.

Industrial & Engineering Chemistry Research
Sichuan University (CN), Centre National des Soins Palliatifs et de la Fin de Vie (FR), Sichuan University of Science and Engineering (CN)
Affordable and clean energy
Openalex Percentile: Top 20%
Membrane Separation and Gas Transport
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