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Updated: Jan 14, 2026

Preparation of Biomass-based Mesoporous Carbon with Higher Nitrogen-/Oxygen-chelating Adsorption for CuII Through Microwave Pre-Pyrolysis
Published on: February 12, 2019
Defect-driven bifunctional Cu/N co-doped biochar for synchronized adsorption and instant catalysis in organic
Rui Yu1, Fang He1, Jingjing Wang1
1School of Water Conservancy and Environment, University of Jinan, Jinan, 250022, China.
Abstract:
As a commonly used antibiotic in healthcare and livestock production, tetracycline (TC) remains in water bodies and poses ecological and health risks, making its efficient removal from wastewater essential. A copper (Cu) and nitrogen (N) co-doped biochar (BC) catalyst (denoted as Cu-N@KBC) was synthesized, exhibiting low energy consumption, excellent adsorption capacity, and superior catalytic performance. Cu-N@KBC achieved 35.2 % TC removal within 20 min, with the solid-liquid distribution coefficient (Kd) of 4.541 L g-1, owing to its well-developed pore structure and abundant defect sites. N doping into the sp2-hybridized carbon network, synergistically coupled with uniform Cu loading, induced the formation of oxygen vacancies and surface defects, thereby creating additional active sites for TC adsorption. A maximum TC degradation of 96.5 % was achieved within 60 min under the optimized conditions. The combined incorporation of Cu and N elevated the graphitization degree (ID/IG = 0.93), optimizing electron transfer and facilitating ≡ Cu2+-O-O-SO3 configuration. This further accelerated the Cu+/Cu2+ redox cycle and the generation of reactive oxygen species (ROS) (•OH, SO4•-, O2•-, 1O2, and CuIII=O). Additionally, the Cu-N@KBC/peroxymonosulfate (PMS) system demonstrated excellent stability, universality, and resistance to interference. Notably, its integration with membrane technology demonstrated the potential of the Cu-N@KBC-cellulose acetate membrane for practical wastewater treatment applications. This study offered a fresh perspective on the adsorption mechanism and the 1O2-dominant non-radical degradation pathway of Cu-N@KBC/PMS/TC system.

