Related Experiment Video
Updated: Sep 11, 2025

A Complete Method for Evaluating the Performance of Photocatalysts for the Degradation of Antibiotics in Environmental Remediation
Published on: October 6, 2022
Defect-Rich Cu2O Nanospheres as a Fenton-Like Catalyst for Cu(III) Generation: Enhanced Inactivation of
Jiyoon Cho1, Jaewoo Lee1,2, Alex Taekyung Lee3
1School of Chemical and Biological Engineering, Institute of Chemical Processes (ICP), Institute of Engineering Research, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul 08826, Republic of Korea.
Abstract:
Cupryl species (Cu(III)) are promising oxidants for degrading recalcitrant organic contaminants and harmful microorganisms in water. In this study, defect-rich cuprous oxide (D-Cu2O) nanospheres (NSs) are introduced as a Fenton-like catalyst to generate Cu(III) for the inactivation of antibiotic-resistant bacteria (ARB) and antibiotic resistance genes (ARGs). D-Cu2O, in the presence of H2O2, achieved inactivation efficiencies 3.2, 3.0, and 2.4 times higher than those of control Cu2O for ARB, extracellular ARGs (e-ARGs), and intracellular ARGs (i-ARGs), respectively. Experimental evidence from oxidant scavenging tests, Cu(III)-periodate complexation assays, electron paramagnetic resonance (EPR), and in situ Raman spectroscopy confirmed that D-Cu2O significantly enhanced Cu(III) generation when reacting with H2O2 compared to control Cu2O. Density functional theory (DFT) calculations further revealed that unsaturated copper atoms in D-Cu2O enhance H2O2 adsorption by improving the structural accessibility of adjacent oxygen atoms. This facilitates electron transfer processes and promotes subsequent Cu(III) generation. The D-Cu2O/H2O2 system demonstrated excellent reusability, maintaining a 4-log reduction of ARB over five cycles, and proved effective across various water matrices and microbial species. These findings highlight the potential of the D-Cu2O/H2O2 system, driven by defect engineering, as a robust platform for enhancing water safety and advancing sustainable disinfection technologies.

