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ACS Applied Polymer Materials· 2026Q1

Dual-Patterned Porous Polymer Film with Micro Trapped Charge for Reversible Molecular Detection

Priyanka Kulshrestha, Rafia Tasnim Rahman, Abbas Ali, Akash Deo et al.

Short summary

A novel dual-patterned porous polyaniline (PANI) film fabricated via a machine-free, scalable bottom-up strategy enables reversible electrochemical detection of biomolecules like dopamine.

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Key points

  • Fabricated dual-patterned porous polyaniline (PANI) films using a scalable, machine-free bottom-up strategy.
  • The film integrates ridge-valley morphologies and utilizes a flexible polymer component for enhanced structural integrity and flexibility.
  • The porous architecture acts as adsorption reservoirs for electroactive biomolecules, while conductive ridges enable efficient electron transfer.
  • Demonstrated reversible electrochemical detection of dopamine, serotonin, and ascorbic acid by modulating local electrostatic interactions and charge distribution via pH-switching.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Hierarchically structured porous polymer films have attracted increasing attention for electrochemical sensing, biointerfaces, and advanced functional surfaces. Herein, we present a simple, machine-free, and scalable bottom-up strategy for fabricating dual-patterned polyaniline (PANI) porous films integrating ridge–valley morphologies through vapor–liquid interfacial polymerization. The fabrication process employs economical and readily accessible precursors, including benzoyl peroxide (BPO) as the oxidant and poly[(Z)-1-(tert-butyl)cyclooct-4-en-1-ol] (P2) as a flexible polymer component that significantly enhances film flexibility relative to polystyrene (PS) substrates while maintaining structural integrity. Under ambient solution-processing conditions, spontaneous pattern formation arises from the coupled effects of interfacial polymer growth, solvent evaporation, and stress relaxation, eliminating the need for lithographic patterning, templates, or external mechanical processing. Importantly, the dual-patterned porous architecture establishes a unique structure–function relationship for electroactive biomolecule interactions. The porous domains promote localized accumulation of electroactive biomolecules by serving as adsorption reservoirs, whereas the interconnected conductive ridges facilitate efficient electron-transfer pathways after desorption. Combined with the pH-responsive protonation/deprotonation behavior of PANI, this hierarchical architecture enables reversible capture, electrochemical conversion, and detection of dopamine (DA), serotonin (5-HT), and ascorbic acid (AA). The behavior is attributed to reversible modulation of local electrostatic interactions and charge distribution within the porous conductive network. As a result, the individual pores within the porous film act as localized sites for analyte accumulation, signal transduction, and molecular recognition under mild pH-switching conditions, demonstrating potential for responsive sensing applications as a smart film.

The authors' abstract, as published at the source. ACS Applied Polymer Materials, 2026 · DOI ↗

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Field: Polymers and Plastics

Polymers and PlasticsMaterials Science