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February 17, 2026Applied Water Science6 citationsOpen Access

Multifunctional silanized ZnO/SiO2/carbon black nanocomposite for enhanced photocatalytic degradation and oil–water separation

RGReza Ghamarpoor

Key Points

  • The research aims to develop a multifunctional nanocomposite for improved photocatalytic degradation and oil-water separation.
  • Chemical activation of zinc oxide and carbon black using sulfuric acid and potassium permanganate.
  • Synthesis of hybrid nanostructures with a sol-gel approach including ZnO, SiO2, and carbon black.
  • Silanization of hybrids using vinyltriethoxysilane and bis[3-(triethoxysilyl)propyl]tetrasulfide.
  • Characterization of materials through XPS, FTIR, TGA, BET, and FE-SEM techniques.
  • Water contact angle increased from 21° to 150° after silanization, indicating improved hydrophobicity.
  • Optical band gap decreased to 2.8 eV, enhancing photocatalytic efficiency.
  • Reinforcement index improved significantly for composites with modified particles.
  • Oil contact angle reduced from 52° to 12°, supporting better oil-water separation.

Abstract

Abstract Ensuring universal access to clean water continues to be a pressing challenge worldwide. In this research, carbon black and zinc oxide nanoparticles were chemically activated using a mixture of sulfuric acid and potassium permanganate (KMnO 4 ) to enhance their surface reactivity. Following this treatment, a sol–gel synthesis approach was applied to produce hybrid nanostructures composed of zinc oxide (ZnO), SiO 2 , and carbon black. These hybrids were then surface silanized using two different silane agents (i.e., vinyltriethoxysilane (VTES) and bis3-(triethoxysilyl)propyltetrasulfide (TESPT)) at a concentration of 5%. A suite of advanced techniques was employed to characterize the materials, including XPS, FTIR, TGA, BET surface area measurements, and FE-SEM. The silanization process markedly improved the hydrophobic nature of the hybrids, with water contact angle (WCA) measurements rising from 21° to as high as 150°. Incorporating the functionalized hybrids led to a substantial decrease in the optical band gap to 2.8 eV, enhancing their photocatalytic efficiency. Mechanical testing revealed a significant boost in the reinforcement index for composites containing modified particles. Additionally, surface wettability assessments showed an increase in WCA from 91° to 151°, alongside a sharp drop in oil contact angle (OCA) from 52° to 12°, following silane treatment. These findings highlight the strong potential of silane-functionalized ZnO/SiO 2 /carbon black hybrids in developing multifunctional rubber nanocomposites for simultaneous oil–water separation and photocatalytic pollutant remediation.

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Cite This Study

Reza Ghamarpoor (2026) studied this question.

synapsesocial.com/papers/6994055d4e9c9e835dfd6388https://doi.org/10.1007/s13201-026-02753-w
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