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May 20, 20260 citationsOpen Access

Vanadium-Doped Zirconia as an Efficient Visible-Light Photocatalyst for Advanced Treatment of Dye-Loaded Wastewater

STSamra TahirFWFatima WaheedMAMomal Akram

Key Points

  • This study aims to evaluate vanadium-doped zirconia as a photocatalyst for degrading malachite green dye under visible light.
  • Synthesized vanadium oxide doped zirconia nanoparticles via wet-impregnation
  • Optimized degradation conditions by altering pH, catalyst dose, dye concentration, irradiation duration, and temperature
  • Conducted kinetic analysis using pseudo-first-order and pseudo-second-order models.
  • Achieved 95–97% removal of malachite green under optimized conditions (pH 12, 0.3 g dose, 10 ppm, 45 min, 60 °C)
  • Kinetic analysis showed alignment with pseudo-second-order model (R² = 0.9645) and Langmuir–Hinshelwood fit (R² = 0.99)
  • Determined activation energies of 12.9 kJ·mol⁻¹ for pseudo-first-order and 30.6 kJ·mol⁻¹ for pseudo-second-order degradations.

Abstract

The Vanadium oxide doped zirconia (V–ZrO₂) nanoparticles were synthesized via a wet-impregnation route and evaluated as visible-light photocatalysts for the degradation of malachite green (MG). Structural and surface analyses (XRD, FTIR, SEM–EDX, pHpzc) confirmed the formation of mixed-phase ZrO₂ with dispersed surface vanadium species that enhance light absorption and reduce band gap to ~2.2 eV. The photocatalytic performance was optimized by varying key operational parameters. The maximum degradation efficiency was obtained at pH 12, 0.3 g catalyst dose, 10 ppm initial dye concentration, 45 min irradiation, and 60 °C, achieving 95–97% MG removal. Kinetic analysis showed that the degradation followed the pseudo-second-order model (R² = 0.9645) more closely than the pseudo-first-order model (R² = 0.8521), supported by the Langmuir–Hinshelwood fit (R² = 0.99), indicating a surface-controlled, adsorption-dependent pathway. Temperature dependent kinetics yielded activation energies of 12.9 kJ·mol⁻¹ (PFO) and 30.6 kJ·mol⁻¹ (PSO), confirming efficient, low-energy degradation. Mechanistic evaluation revealed that the process is dominated by an indirect pathway involving reactive oxygen species (•OH and O₂•⁻). These results demonstrate that V–ZrO₂ is a promising visible-light photocatalyst for efficient treatment of dye-contaminated wastewater. Article Highlights 1. Synthesis of vanadium oxide doped zirconia (V–ZrO₂) as an efficient photocatalyst. 2. Vanadium doping of ZrO₂ successfully extends its photocatalytic activity into the visible light region by narrowing the bandgap. 3. Structural modifications, crystallinity, and enhanced optical absorption due to vanadium integration were confirmed by pHpzc, XRD, FTIR, SEM-EDX, and UV-Vis analyses. 4. High degradation efficiency of Malachite Green dye achieved under visible light 5. Kinetic modeling indicates strong alignment with pseudo-second-order and Langmuir–Hinshelwood models, revealing surface-controlled reaction pathways. 6. V-ZrO₂ proves to be effective and eco-friendly for treating dye-contaminated wastewater.

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Cite This Study

Tahir et al. (2025) studied this question.

synapsesocial.com/papers/6a0d5064f03e14405aa9c22fhttps://doi.org/10.57647/ijc.2026.1602.15
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