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March 18, 2026Water Environment Research0 citationsOpen Access

Evaluation and Optimization of Azithromycin Removal by Raw and Alkali‐Modified Peanut Shells Using Taguchi‐Based Experimental Design Approach

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RARohab AsadGHGhulam HussainMUMohammad Usman

Key Points

  • This research aims to evaluate the potential of raw and alkali-modified peanut shells for removing azithromycin from solution.
  • Characterization of adsorbents using FTIR and SEM with EDX
  • Application of a Taguchi-based experimental design approach
  • Testing with synthetic azithromycin solution to optimize variables
  • 63% removal with raw peanut shells at specific conditions
  • 85% maximum removal achieved with modified peanut shells
  • Key influential factors identified: pH and initial concentration
  • Improved adsorption performance of modified shells confirmed through surface analysis

Abstract

Advanced treatment methods for removing antibiotics are cost-intensive. Subsequently, the goal of environmental and economic sustainability has switched attention towards bio-adsorbents. This study evaluated the effectiveness of raw and alkali-modified peanut shell powder as a cost-effective, novel adsorbent for removing azithromycin, one of the most widely used drugs worldwide. Prepared adsorbents were characterized by FTIR and SEM equipped with EDX. Experiments designed using a Taguchi-based approach were performed with a synthetic azithromycin solution to optimize initial concentrations, adsorbent dose, pH, and time. The results showed 63% removal with raw adsorbent at pH 11, an initial concentration of 20 mg/L, a time of 45 min, and an adsorbent dose of 0.4 g/L. With the modified adsorbent, an attractive 85% (maximum) removal was achieved at pH 11, an initial concentration of 30 mg/L, a time of 60 min, and an adsorbent dose of 0.4 g/L. Based on analysis of variance (ANOVA), pH and initial concentration are identified as the most influential factors for azithromycin removal. The improved adsorption performance of modified peanut shells (qmax = 192.1 mg/g compared to 159.2 mg/g for raw PS) was due to increased surface heterogeneity, enhanced electrostatic interactions, and greater accessibility of oxygen-containing functional groups, as confirmed by kinetic, isotherm, and surface analysis.

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Cite This Study

Asad et al. (2026) studied this question.

synapsesocial.com/papers/69ba42dc4e9516ffd37a3908https://doi.org/10.1002/wer.70341
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