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May 29, 2026Advanced Functional Materials0 citations

Reprogrammable Intrinsic Microporous Polymer Nanofilm Platform for Tunable Molecular Separation

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LZLiu ZQZQifeng ZhangYSY W Sun

Key Points

  • This research aims to develop a reprogrammable membrane platform for efficient molecular separation with adjustable properties.
  • Developed a non-crosslinked PIMs-PAA nanofilm through interfacial polymerization.
  • Conducted post-synthetic modifications to tune pore size and interfacial chemistry.
  • Tested membrane performance with solvents like methanol, toluene, and DMF.
  • Achieved solvent permeance rates up to 18.19 L·m −2 ·h −1 ·bar −1 for methanol and over 12 L·m −2 ·h −1 ·bar −1 for toluene and DMF.
  • Demonstrated adjustable MWCO ranging from 250 to 1300 Da for on-demand molecular separations.
  • Showed adaptability for both polar and nonpolar solvents with a single precursor membrane.

Abstract

ABSTRACT The development of advanced membranes with tunable separation properties is crucial for energy‐efficient molecular separation, yet conventional polymeric membranes suffer from fixed pore sizes and surface affinities, limiting their adaptability. Here, we report a reprogrammable membrane platform based on an intrinsic microporous polyamide acid (PIMs‐PAA) nanofilm, fabricated via interfacial polymerization of a spirocyclic dianhydride (TA‐TSB) and m‐phenylenediamine (m‐PDA). The resulting non‐crosslinked PIMs‐PAA nanofilm features abundant reactive sites, enabling precise post‐synthetic modifications, including imidization, crosslinking, and fluorination, to independently tune pore size and interfacial chemistry. The derived membranes exhibited high solvent permeance (e.g., 18.19, 11.52, and 12.31 L·m −2 ·h −1 ·bar −1 for methanol, toluene, and DMF, respectively), and could be reprogrammed for on‐demand molecular separations, with a tunable molecular weight cut‐off (MWCO) spanning from 250 to 1300 Da. Importantly, this platform enables a single precursor membrane to be adaptively reconfigured for multiple separation tasks, efficiently handling both polar and nonpolar solvents across a broad MWCO separation range. This work establishes a versatile design framework for reprogrammable separation membranes, bridging advanced polymer materials with sustainable chemical and molecular purification processes.

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Cite This Study

Z et al. (2026) studied this question.

synapsesocial.com/papers/6a192d7efab5b468c4416531https://doi.org/10.1002/adfm.76151
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