Related Experiment Video
Updated: Sep 18, 2025

Deposition of Porous Sorbents on Fabric Supports
Published on: June 12, 2018
Surface Coordination and Radical Binding Induce Efficient Decomposition of Chlorinated Organophosphate Flame
Fan Zhang1,2, Meng Jiao1,2, Lihong Wang1
1Research Center for Eco-environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
Abstract:
Chlorinated organophosphate flame retardants (Cl-OPFRs) make up a class of highly refractory pollutants that have raised wide environmental concerns. Conventional AOPs, e.g., the benchmark O3/H2O2 (peroxone), are not efficient in removing them from water/wastewater, because of their relatively low reaction rates with hydroxyl radical (•OH). We report here that Cl-OPFRs (i.e., TCEP, TCPP, and TDCPP) can be efficiently removed by catalytic ozonation with zinc oxide (O3/ZnO) through a novel reaction pathway. Based on in situ characterization with confocal Raman spectrum and fluorescence microscopy imaging, we confirmed that the ozone-ZnO interaction resulted in the formation of surface-bound •OH, with yields 50% higher than those of the peroxone system. Using TCEP as a model Cl-OPFR and ATR-FTIR characterization, we recognized the coordination between the phosphoryl oxygen and the surface Zn(II) of ZnO. The surface coordination improved the reactivity of TCEP toward the surface-bound •OH, which was confirmed with a competitive reaction on ZnO. The O3/ZnO was most effective at neutral pH for TCEP removal and can achieve partial mineralization and detoxification of the compound. This work highlights the importance of surface reaction in removing the highly refractory Cl-OPFRs.
More Related Videos
08:33Functionalization and Dispersion of Carbon Nanomaterials Using an Environmentally Friendly Ultrasonicated Ozonolysis Process
Published on: May 30, 2017
06:34Synthesis of Antiviral Tetrahydrocarbazole Derivatives by Photochemical and Acid-catalyzed C-H Functionalization via Intermediate Peroxides CHIPS
Published on: June 20, 2014
Related Concept Videos
Radical Substitution: Allylic Chlorination
Oxidative Cleavage of Alkenes: Ozonolysis
Ozone is a symmetrical bent molecule stabilized by a resonance structure.
Radical Formation: Elimination
Radical Substitution: Halogenation of Alkanes and Alkyl Substituents
In the initiation step of the reaction, the chlorine molecule undergoes homolytic cleavage in the presence of light or heat, forming two highly reactive chlorine radicals. Propagation occurs in two...
Radical Reactivity: Electrophilic Radicals
Radical Formation: Homolysis