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February 21, 2026Journal of Environmental Management0 citationsOpen Access

A novel functionalized cellulose paper for wastewater treatment: Exploring its multifunctional capabilities through TA-APTES-mediated surface engineering

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TCTeng ChenYWYunjiang WoXLXin Li

Key Points

  • The aim is to develop a multifunctional cellulose paper for efficient wastewater treatment using eco-friendly methods.
  • Functionalized cellulose paper was created by integrating tannic acid and APTES.
  • Silver nanoparticles were deposited to enhance catalytic and antibacterial properties.
  • Additional modification with octadecylamine resulted in superhydrophobic cellulose paper.
  • The material was tested for oil-water separation efficiency and recyclability.
  • The catalytic activity of CP/TA-APTES/Ag was measured with a rate constant of 0.0118 s−1.
  • Superhydrophobic cellulose paper achieved a water contact angle of 155.6°.
  • Separation efficiency for oil-water mixtures exceeded 98.61%, with impressive flux rates.
  • The modified paper maintained high efficiency after multiple cycles of use.

Abstract

Considering the complexity of wastewater contaminants, there is an urgent demand for fabricating multifunctional materials with high efficiency through environmentally friendly and facile approaches. Herein, a novel functionalized cellulose paper (CP/TA-APTES) was successfully fabricated through the integration of cellulose paper (CP) with tannic acid (TA) and 3-aminopropyltriethoxysilane (APTES) using an impregnation method. Subsequently, CP/TA-APTES was introduced as a reducing agent to reduce silver ammonia ions. Silver nanoparticles (Ag NPs) were then deposited on the surface of CP/TA-APTES, endowing the paper (CP/TA-APTES/Ag) with excellent catalytic activity and antibacterial properties. The MB dye was reduced via CP/TA-APTES/Ag, and the corresponding rate constant was determined to be 0.0118 s −1 , indicating a high level of catalytic activity. In addition, the CP/TA-APTES/Ag demonstrated remarkable antibacterial properties against a variety of pathogenic bacteria. Superhydrophobic cellulose paper (CP/TA-APTES/ODA) was successfully synthesized through the chemical modification of CP/TA-APTES using octadecylamine (ODA), accomplished via Michael addition or Schiff base reactions, resulting in a material with enhanced surface hydrophobicity and structural stability. Notably, the CP/TA-APTES/ODA exhibited outstanding superhydrophobic and superoleophilic characteristics, as demonstrated by an impressive water contact angle reaching up to 155.6°, coupled with an oil contact angle (OCA) of 0°. Remarkably, the material maintained its superhydrophobic functionality even under severe chemical and mechanical conditions. Moreover, the surface of superhydrophobic CP/TA-APTES/ODA exhibited resistance to the adhesion of dye solutions and powders, demonstrating its superior self-cleaning and anti-fouling capabilities. Due to the favorable properties, the CP/TA-APTES/ODA was utilized as an oil-water separation material, demonstrating the ability to efficiently separate a wide range of oil-water mixtures solely through gravitational force, with separation efficiencies exceeding 98.61% and fluxes ranging from 336.45 to 9554.14 L m −2 ·h −1 . More importantly, it exhibited excellent recyclability, with a separation efficiency remaining above 94.14% and a flux exceeding 310.13 L m −2 ·h −1 even after ten consecutive cycles. This cost-effective, environmentally sustainable, and multifunctional cellulose-based paper not only facilitated the rational and high-value utilization of natural cellulose, but also offered a viable solution to the challenge of complex wastewater treatment. • Surface coating technology was applied to modify cellulose paper through TA- APTES coating. • The CP/TA-APTES could function as reactive substrates, due to the secondary active reaction sites in the TA–APTES coating. • CP/TA-APTES/Ag demonstrated superior catalytic activities and excellent antibacterial activities. • After modified with ODA, CP/TA-APTES/ODA demonstrated superhydrophobicity, which was suitable for treating oily wastewater.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69994ba9873532290d01fc4chttps://doi.org/10.1016/j.jenvman.2026.128745
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