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Built-In Electric Field Augments Hypersalinity Resistance of Heterostructured Metal Oxides for Efficient Fenton-like
Cheng Chen1,2, Ying-Ru Wang1,2, Yun-Jie Wang1,2
1State Key Laboratory of Advanced Environmental Technology, Department of Environmental Science and Engineering, University of Science and Technology of China, Hefei 230026, China.
Abstract:
Fenton-like oxidation processes for saline wastewater treatment are plagued by high energy/chemical consumption, mainly due to severe interferences by the high-concentration inorganic salt. Such salt inhibition can be partially alleviated by shifting to nonradical catalytic processes, but the surface-accumulated salt ions in heterogeneous catalytic systems still cause electrostatic and steric hindrance to restrict the interfacial reactant transfer. Herein, we fabricated a heterostructured CuO/ZnFe2O4 catalyst that provides a built-in electric field (BIEF) to strengthen the reactant-catalyst interaction and weaken the salt interferences. Specifically, the electron-rich CuO component favors electrostatic repelling of chlorine ions (Cl-), while electron-deficient ZnFe2O4 provides a compressed electrical double layer to strengthen peroxydisulfate adsorption and pollutant diffusion. Consequently, CuO/ZnFe2O4 exhibited superior hypersalinity resistance in Fenton-like catalysis, maintaining almost unchanged decontamination activity in a 500 mM Cl- solution. It also demonstrated high stability and robustness for the treatment of real hypersaline industrial wastewater, achieving over 80% tetracycline removal during a 15-h continuous operation in a fixed-bed reactor. Our work presents insights into BIEF-driven salt resistance via heterostructure design and offers low-carbon advanced oxidation technologies for hypersaline wastewater treatment.
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