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April 25, 2026ACS Applied Materials & Interfaces0 citations

Using Maleimide-Induced Dual Cross-Linking Method to Fabricate High-Performance Mixed Matrix Membrane

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YJYuan JiYWYinbo WangYLYuxi Liu

Key Points

  • The aim is to fabricate mixed matrix membranes with improved gas separation performance and enhanced interfacial compatibility.
  • Prepared ZIF-8-MI and blended it into PMI to create mixed matrix membranes.
  • Thermally treated membranes at 350 °C to induce interfacial cross-linking and in situ cross-linking.
  • Characterized gas separation performance and plasticization resistance of the resultant membranes.
  • Optimized MMM (cPI-ZIF-8-SI-20%) achieved CO2 permeability of 1028 Barrer and CO2/CH4 selectivity of 39.2.
  • Overall performance surpassed Robeson 2008 Upperbound and exceeded 2018 limits across 2-25 bar pressure range.
  • Exhibited exceptional plasticization resistance with a critical plasticization pressure of 44 bar.

Abstract

Constructing mixed matrix membranes (MMMs) with excellent interfacial compatibility and superior anti-plasticization performance is still a challenge. Herein, we prepared a zeolitic imidazolate framework filler modified with maleimide (MI) cross-linking site (termed as ZIF-8-MI). Subsequently, this filler was blended into the polyimide (PI) matrix that also contains MI cross-linking site (termed as PMI), in order to construct a series of MMM. When the MMM was thermally treated at 350 °C, the ZIF-PMI interfacial cross-linking reaction took place, which was derived from the radical cycloaddition between ZIF-8-MI and PMI, thus promoting the interfacial compatibility between the fillers and the PMI matrix. Concurrently, the in situ cross-linking of the PMI matrix was also formed due to the similar MI-induced radical cycloaddition reaction. As a result, thanks to this dual cross-linking effect, the gas separation performance and the anti-plasticization ability of MMM were highly enhanced. The optimized MMM, termed as cPI-ZIF-8-SI-20%, achieved a CO2 permeability of 1028 Barrer, while maintaining a CO2/CH4 selectivity of 39.2, and its overall separation performance surpassed the Robeson 2008 Upperbound. Moreover, its CO2/CH4 (50:50) mixed gas separation performance continuously exceeds the 2018 performance upper limit across the 2-25 bar pressure range. In addition, it also exhibited exceptional plasticization resistance with a critical plasticization pressure of 44 bar. We believe that this dual cross-linking method provides an important reference for the development of MMMs with good interfacial compatibility and decent antiplasticization performance.

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Cite This Study

Ji et al. (2026) studied this question.

synapsesocial.com/papers/69ec598788ba6daa22dab4b1https://doi.org/10.1021/acsami.5c20217
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