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July 19, 2026PLoS ONE0 citationsOpen Access

Porous superparamagnetic activated carbon from biomass: Adsorption behaviour and regeneration performance for 2,4-dichlorophenoxyacetic acid removal

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HSH SrideviManipal Academy of Higher EducationRVRamesh VinayagamManipal Academy of Higher EducationRSRaja SelvarajManipal Academy of Higher Education

Key Points

  • The aim is to develop a porous magnetic activated carbon from biomass for efficient removal of 2,4-D.
  • Developed TA-MAC from Tabebuia aurea leaves with BET analysis for surface area measurement.
  • Conducted adsorption experiments under varying conditions: pH, dose, temperature, and contact time.
  • Analyzed adsorption data using pseudo-second order kinetics and Langmuir model.
  • Achieved maximum 2,4-D removal efficiency of 79.52% under optimal conditions.
  • Maximum adsorption capacity reached 165.18 mg/g at 303 K (Langmuir model).
  • TA-MAC maintained over 70% removal efficiency across five regeneration cycles.

Abstract

This research used Tabebuia aurea leaves to develop a porous magnetic activated carbon (TA-MAC) that helps to remove 2,4-dichlorophenoxyacetic acid. BET analysis revealed a high specific surface area of 996.87 m 2 /g, while magnetic characterization confirmed the superparamagnetic nature of the adsorbent with a saturation magnetization of 3.89 emu/g, enabling easy magnetic separation after treatment. XPS analysis verified the successful adsorption of 2,4-D through changes in surface elemental composition and functional groups. The optimum adsorption conditions were achieved at pH 2 using a TA-MAC dosage of 0.5 g/L, initial 2,4-D concentration of 50 mg/L, contact time of 120 min, temperature of 303 K, and agitation speed of 150 rpm, resulting in a maximum 2,4-D removal efficiency of 79.52%. Adsorption kinetics followed the pseudo-second order model, indicating the involvement of multiple surface interactions. The maximum adsorption capacity reached 165.18 mg/g at 303 K according to the Langmuir model. Thermodynamic evaluations further supported the physisorption nature of the interaction and confirmed its exothermic character. Additionally, the adsorbent exhibited good regeneration capacity after five cycles. TA-MAC maintained high and consistent performance, achieving over 70% 2,4-D removal efficiency in all tested real water samples, demonstrating its potential for practical applications. Collectively, these findings emphasize the efficacy of the synthesized adsorbent as a practical and sustainable solution for pollution remediation.

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Cite This Study

Sridevi et al. (2026) studied this question.

synapsesocial.com/papers/6a5c6a1f118b92953e3ee3c7https://doi.org/10.1371/journal.pone.0353663
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