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May 13, 2026Water0 citationsOpen Access

Enhanced Antibiotic Removal from Water by Alkali-Modified Porous Biochar: Performance and Underlying Mechanisms

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BLBiyou LiJHJingyun HuangQLQifen Luo

Key Points

  • The aim is to evaluate the performance of alkali-modified biochar for tetracycline removal from water.
  • Prepared alkali-modified porous biochar (KABC-1h) via KOH impregnation and pyrolysis.
  • Characterized adsorption performance towards tetracycline using various techniques.
  • Analyzed adsorption kinetics and isotherms to determine adsorption mechanisms.
  • Achieved maximum tetracycline adsorption capacity of 21.60 mg/g.
  • Adsorption dominated by chemisorption and followed pseudo-second-order kinetics.
  • Adsorption isotherms fitted Freundlich model, indicating multilayer adsorption.

Abstract

This study prepared alkali-modified porous biochar (KABC-1h) from straw via KOH impregnation and pyrolysis and systematically investigated its adsorption performance toward tetracycline (TC) in water. The optimal modification condition was determined as 2 mol/L KOH impregnation for 1 h followed by pyrolysis at 600 °C. Characterization results showed that alkali modification significantly increased the BET-specific surface area to 132.56 m2/g, enriched hierarchical micro-mesoporous structure, and introduced abundant oxygen-containing functional groups. The maximum adsorption capacity of KABC-1h for TC reached 21.60 mg/g, much higher than 14.11 mg/g of unmodified biochar (BC). Adsorption kinetics followed the pseudo-second-order model well, revealing that chemisorption dominated the rate-controlling step. Adsorption isotherms fitted the Freundlich model better, indicating multilayer heterogeneous adsorption on the biochar surface. Mechanism studies confirmed that TC adsorption was realized mainly through hydrogen bonding, π-π interaction, and surface complexation, whereas electrostatic interaction played a minor role. Moreover, KABC-1h exhibited stable adsorption efficiency over a wide pH range (4.5–11.5) and strong anti-interference ability against coexisting ions, with 59.0% removal efficiency retained after three regeneration cycles. This work demonstrates that KOH-modified porous biochar is a promising adsorbent for efficient TC removal from aqueous solution, providing a feasible strategy for agricultural waste valorization and antibiotic wastewater treatment.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6a03cbbe1c527af8f1ecf69ahttps://doi.org/10.3390/w18101130
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