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February 19, 2026Scientific Reports2 citationsOpen Access

Sustainable wastewater treatment by banana peel/layered double hydroxide composite under ideal conditions using the Taguchi method

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HMHamdy F. M. MohamedMinia UniversitySHSarah H. M. HafezMinia UniversityEAE. E. Abdel-HadyMinia University

Key Points

  • To investigate the efficiency of banana peel and layered double hydroxide in removing cationic dyes from aqueous solutions.
  • Utilized Taguchi experimental design to optimize adsorption parameters: pH, adsorbent dose, contact time, initial dye concentration.
  • Synthesized and activated banana peels and layered double hydroxide composites as adsorbents for crystal violet removal.
  • Conducted reusability tests over four cycles to assess the performance of the adsorbents.
  • Achieved removal efficiencies of 66.0%, 82.4%, and 95.2% for banana peel, layered double hydroxide, and composite respectively under optimal conditions.
  • Maximum adsorption capacities were determined as 39.16 mg/g (banana peel), 81.10 mg/g (layered double hydroxide), and 187.40 mg/g (composite).
  • Reusability tests showed the composite retained 80.0% efficiency after four cycles.

Abstract

The present study investigates the removal of the cationic dye crystal violet (CV) from aqueous solutions using low-cost adsorbents derived from agricultural waste. Banana peels (BP) were activated, and a Ni–Ca–Fe layered double hydroxide (LDH) as well as a BP/LDH composite were synthesized and applied as adsorbents. The Taguchi experimental design was employed to optimize the adsorption process parameters, including pH, adsorbent dose, contact time, and initial dye concentration. Among the studied factors, pH, adsorbent dose, and initial concentration exhibited the most significant influence on CV removal efficiency. Under optimal conditions (pH 9, adsorbent dosage 0.1 g/L, and contact time 120 min), removal efficiencies of 66.0, 82.4, and 95.2% were achieved for BP, LDH, and BP/LDH, respectively. Analysis of variance (ANOVA) revealed that pH was the most influential parameter for CV adsorption onto BP and BP/LDH, whereas contact time played the dominant role for LDH. Equilibrium data were well described by the Freundlich, Langmuir, and Temkin isotherm models, with maximum adsorption capacities of 39.16, 81.10, and 187.40 mg/g for BP, LDH, and BP/LDH, respectively. Kinetic studies showed that the adsorption process followed the pseudo-second-order model, indicating chemisorption as the dominant mechanism. Reusability tests demonstrated that the BP/LDH composite retained a high removal efficiency of 80.0% after four adsorption – desorption cycles. These findings confirm that the BP/LDH composite is an efficient, sustainable, and reusable adsorbent with strong potential for practical wastewater treatment applications.

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Cite This Study

Mohamed et al. (2026) studied this question.

synapsesocial.com/papers/6996712d80e1323b05ec0394https://doi.org/10.1038/s41598-026-37321-4
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