Biomimetic gas channel constructed for efficient CO2 removal based on computational simulations

Ting He, Shuang Yao, Dejian Chen, Zhaoyun Sun, Xiaoyun Wang, Keyi Wang, Jiangwei Chen, Qingguo Li, Rizhi Chen, Yawei Wang, Zhaoliang Cui

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Membrane oxygenator performs lung function in the Extra-corporeal Membrane Oxygenation (ECMO) system. In the clinical use, to ensure the balance of gas exchange of patient's body, the gas-blood exchange membrane is required to possess CO2/O2 selectivity, which is suggested to be in the range of 10–12. In our work, the molecular dynamics simulation results displayed that the amino-functionalized Zr-MOFs provides fast transport channels for CO2 molecules because of the enhancement of the adsorption and diffusion ability for CO2. Therefore, we chose organic ligands with abundant CO2-philic groups to synthesize target amino-functionalized Zr-MOFs, and then dispersed them into medical-grade PDMS solution to study the separation performance of CO2/O2. On the basis of constructing anti-leakage coating layer, biomimetic gas channels were designed to increase the clearance rate of CO2. Experimental results exhibited that the CO2/O2 selectivity of (NH2)2-UiO-66/PDMS MMM was as high as 11.19, which was basically consistent with the simulation results. The obtained amino-functionalized Zr-MOF/PDMS coating layer displayed favorable biocompatibility and biosafety. Meanwhile, the construction of biomimetic channel solves the difficult problem of CO2 removal in PMP membrane, which verifies the feasibility of applying porous materials to gas-blood exchange membranes in the ECMO system.

Original languageEnglish
Article number123469
JournalJournal of Membrane Science
Volume716
DOIs
StatePublished - Feb 2025

Keywords

  • Amino-functionalized Zr-MOFs
  • Animal experiment
  • Biomimetic gas channels
  • CO removal
  • Mixed matrix membrane

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