Issue 30, 2026, Issue in Progress

Thermo-responsive water purification: a thermo-switchable molecular brush for precision engineering of antibacterial ZnO on agro-waste filters

Abstract

Waterborne pathogens remain a major threat to public health, highlighting the need for sustainable antibacterial filtration materials. Herein, we report a thermo-responsive biomass-based filter constructed by grafting poly(N-acryloyl glycinamide) (PNAGA) molecular brushes onto delignified maize stalk pith (DMSP), followed by in situ growth of ZnO nanostructures. The grafted PNAGA layer exhibits upper critical solution temperature (UCST)-type behavior, producing temperature-dependent swelling and interfacial hydration changes that influence ZnO nucleation and growth on the porous scaffold. Compared with ungrafted DMSP, DMSP-g-PNAGA promotes more distinct ZnO morphologies under different synthesis temperatures, including needle-like structures at 25 °C and hierarchical flower-like assemblies at 40 °C. HRTEM analysis revealed representative (001)-related lattice fringes in ZDP-T25-t490 and (100)-related lattice fringes in ZDP-T40-t490, while DFT/ESP calculations suggest that temperature-dependent PNAGA conformations alter their preferential interactions with ZnO surfaces. The optimized ZDP-T40-t490 filter achieved high ZnO loading of 659.7 mg g−1 and strong initial antibacterial performance, with LRV values of 5.96 ± 0.12 against Escherichia coli (E. coli) and 5.87 ± 0.15 against Staphylococcus aureus (S. aureus). The antibacterial activity is attributed to the combined effects of bacterial retention within the labyrinthine pores, Zn2+ release, membrane damage, intracellular oxidative stress, and morphology-assisted ZnO-bacteria contact. Repeated-filtration and Zn leaching tests further indicate that long-term stability and initial Zn release remain important limitations. This work provides a proof-of-concept strategy for integrating agro-waste-derived porous scaffolds, UCST-responsive polymer brushes, and antibacterial ZnO nanostructures, while further optimization is required before practical water-treatment application.

Graphical abstract: Thermo-responsive water purification: a thermo-switchable molecular brush for precision engineering of antibacterial ZnO on agro-waste filters

Supplementary files

Article information

Article type
Paper
Submitted
17 Mar 2026
Accepted
12 May 2026
First published
21 May 2026
This article is Open Access
Creative Commons BY license

RSC Adv., 2026,16, 27504-27517

Thermo-responsive water purification: a thermo-switchable molecular brush for precision engineering of antibacterial ZnO on agro-waste filters

C. Xia, X. Wu, X. Gao, Q. Li, L. Peng, T. Si and H. Zhang, RSC Adv., 2026, 16, 27504 DOI: 10.1039/D6RA02207C

This article is licensed under a Creative Commons Attribution 3.0 Unported Licence. You can use material from this article in other publications without requesting further permissions from the RSC, provided that the correct acknowledgement is given.

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