Coffee Husk-Derived Activated Carbon for the Adsorptive Removal of Imatinib Mesylate from Water: Kinetic, Isotherm, Thermodynamic, and DFT Studies

Coffee husk-derived activated carbon prepared by H3PO4 chemical activation was investigated for the removal of imatinib mesylate from aqueous solutions. Structural and chemical characterization using N2 physisorption, SEM, FTIR, Raman spectroscopy, and thermogravimetric analysis revealed a porous carbon matrix containing oxygenated functional groups and a defective turbostratic structure. The adsorption behavior was evaluated through batch experiments by examining the effects of pH, adsorbent dosage, particle size, contact time, and initial drug concentration. Under optimized conditions (300 µm particle size, 0.6 g adsorbent dosage, and pH 6), imatinib mesylate removal reached 97.9%, with equilibrium achieved within 60 min. The adsorption kinetics followed the pseudo-second-order model (R2 = 0.946–0.984), while equilibrium data were best described by the Sips isotherm model (R2 > 0.99), indicating adsorption on a heterogeneous surface. Density functional theory calculations confirmed the contribution of oxygen-containing groups, with carboxyl-functionalized carbon exhibiting the strongest interaction with imatinib mesylate (−105.3 kJ mol−1). These findings highlight the potential of coffee husk-derived activated carbon as a sustainable adsorbent for pharmaceutical contaminant removal.

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Journal
Molecules
Published
2026-09-24
DOI
https://doi.org/10.3390/molecules31193391
Primary Topic
Adsorption and biosorption for pollutant removal
Type
article
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article

Coffee Husk-Derived Activated Carbon for the Adsorptive Removal of Imatinib Mesylate from Water: Kinetic, Isotherm, Thermodynamic, and DFT Studies

Thibault Terencio, Patricio J. Espinoza‐Montero, Lucía E. Manangón-Perugachi, Carolina Montero et al.
Molecules
Adsorption and biosorption for pollutant removal
article

Coffee Husk-Derived Activated Carbon for the Adsorptive Removal of Imatinib Mesylate from Water: Kinetic, Isotherm, Thermodynamic, and DFT Studies

Thibault Terencio, Patricio J. Espinoza‐Montero, Lucía E. Manangón-Perugachi, Carolina Montero, MICHAEL ANIBAL MACIAS PRO, Joan Manuel Rodríguez-Díaz, Alejandro Altamirano Briones, Pablo A. Cisneros‐Pérez, Erika Góngora-Muñoz, Luis Jaime Corredor, Santiago Guerrero‐Jaramillo, Jeniffer Chiquito, Vivian Párraga-García
article en

Abstract

Coffee husk-derived activated carbon prepared by H3PO4 chemical activation was investigated for the removal of imatinib mesylate from aqueous solutions. Structural and chemical characterization using N2 physisorption, SEM, FTIR, Raman spectroscopy, and thermogravimetric analysis revealed a porous carbon matrix containing oxygenated functional groups and a defective turbostratic structure. The adsorption behavior was evaluated through batch experiments by examining the effects of pH, adsorbent dosage, particle size, contact time, and initial drug concentration. Under optimized conditions (300 µm particle size, 0.6 g adsorbent dosage, and pH 6), imatinib mesylate removal reached 97.9%, with equilibrium achieved within 60 min. The adsorption kinetics followed the pseudo-second-order model (R2 = 0.946–0.984), while equilibrium data were best described by the Sips isotherm model (R2 > 0.99), indicating adsorption on a heterogeneous surface. Density functional theory calculations confirmed the contribution of oxygen-containing groups, with carboxyl-functionalized carbon exhibiting the strongest interaction with imatinib mesylate (−105.3 kJ mol−1). These findings highlight the potential of coffee husk-derived activated carbon as a sustainable adsorbent for pharmaceutical contaminant removal.

MoleculesVol. 31(19)
Central University of Ecuador (EC), Universidad Yachay Tech (EC), Pontificia Universidad Católica del Ecuador (EC), Escuela Superior Politécnica Agropecuaria de Manabí Manuel Félix López (EC), Universidad Técnica de Manabí (EC), National Polytechnic School (EC)
Responsible consumption and production
Openalex Percentile: Top 21%
Adsorption and biosorption for pollutant removal
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