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Updated: Aug 6, 2026

Preparation of Biomass-based Mesoporous Carbon with Higher Nitrogen-/Oxygen-chelating Adsorption for Cu(II) Through Microwave Pre-Pyrolysis
Published on: February 12, 2019
Sequential doping strategy for all-biomass derived N/P co-doped biochar: Unraveling the divergent capture mechanisms
Chengyu Li1, Qihang Wang2, Kunxiang Zhang1
1Key Laboratory of Wood Material Science and Utilization (Beijing Forestry University), Ministry of Education, Beijing 100083, PR China.
Abstract:
Biochar doping is widely applied for enhancing antibiotic removal from water, but most approaches still rely on synthetic chemicals and exhibit limited control over the incorporation of heteroatoms. Herein, a novel all biomass derived N/P-doped biochar (NP-CKBC) was fabricated from cork, chitin, and phytic acid via a sequential doping strategy for enhancing tetracycline (TC) and sulfamethoxazole (SMX) adsorption. The sequential doping utilized chitin-derived N to pre-stabilize the carbon skeleton, enabling subsequent phytic acid etching to form an interconnected porous network with ultra-thin walls and a high pore volume (1.16 cm3/g). Furthermore, this synergistic process simultaneously enhanced both graphitization and defect density, embedding abundant N/P active sites within the robust framework for efficient antibiotic capture. Driven by its hierarchical porous architecture and synergistically enriched N/P active sites, NP-CKBC achieved high adsorption capacities for TC (439.81 mg/g) and SMX (355.52 mg/g), rapid equilibrium kinetics (∼30 min), strong anti-interference ability, and superior continuous adsorption performance. Experimental characterizations and DFT calculations reveal that TC is captured via EDA and π-π interactions, whereas SMX is anchored through hydrogen bonding and electrostatic attraction. This work provides a sustainable strategy for preparing biochar from green biomass, offering a promising solution aimed at eliminating antibiotics within complicated aqueous systems.
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