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April 3, 2026Scientific Reports0 citationsOpen Access

Acid activated orange peel waste adsorbent for the elimination of phenol with insights into isotherm, kinetics, and thermodynamics

ZAZahrah AlqahtaniOKOladejo Emmanuel KolaAAAliyah Alsharif

Key Points

  • The research aimed to evaluate the effectiveness of acid-treated orange peel as an adsorbent for phenol removal from water.
  • Characterization of acid-treated and raw orange peel using FTIR, SEM, BET, and XRD.
  • Assessment of adsorption capacities using Langmuir and Freundlich isotherm models.
  • Kinetic studies to determine the rate of phenol adsorption.
  • Thermodynamic analysis to evaluate the nature of the adsorption process.
  • Acid-treated orange peel achieved up to 85.25% phenol removal efficiency at 45 °C within 150 minutes.
  • Maximum adsorption capacities were 133.13 mg g−1 for acid-treated and 80.32 mg g−1 for raw orange peel.
  • Adsorption behavior followed Langmuir for raw and Freundlich for acid-treated orange peel.
  • Kinetic analysis indicated pseudo-first-order for raw and pseudo-second-order for acid-treated orange peel.
  • Thermodynamic analysis confirmed the process was spontaneous and endothermic with ΔH° values of 14.5 kJ mol−1 (raw) and 45.32 kJ mol−1 (acid-treated).

Abstract

This study explored the potential of acid-treated orange peel (ATOP) and raw orange peel (ROP) as sustainable, low-cost biosorbents for the elimination of phenol from aqueous solutions. Acid modification was employed to enhance the textural and surface chemistry properties of orange peel–derived biomass. Comprehensive characterization using FTIR, SEM, BET, and XRD confirmed successful surface functionalization, improved porosity, and structural modification after adsorption. The findings showed that ATOP demonstrated superior performance relative to ROP, achieving a maximum removal efficiency of 85.25% at 45 °C and reaching equilibrium within 150 min. The maximum adsorption capacities obtained from the Langmuir model were 80.32 mg g−1 for ROP and 133.13 mg g−1 for ATOP. Equilibrium data indicated Langmuir behavior for ROP and Freundlich behavior for ATOP, reflecting increased surface heterogeneity induced by activation. Kinetic assessment showed that phenol removal on ROP followed the pseudo-first-order model, while ATOP was best explained by the pseudo-second-order model, signifying a shift toward stronger surface interactions after acid modification. Thermodynamic parameters established the process to be spontaneous and endothermic, with ΔH° values of 14.5 kJ mol−1 (ROP) and 45.32 kJ mol−1 (ATOP). Overall, the results demonstrate that acid-treated orange peel biomass is an efficient and environmentally benign adsorbent for phenol remediation in wastewater systems.

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Cite This Study

Alqahtani et al. (2026) studied this question.

synapsesocial.com/papers/69cf5d775a333a821460b2dehttps://doi.org/10.1038/s41598-026-46890-3
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