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Updated: May 24, 2025

Extraction of Ramie Fiber in Alkali Hydrogen Peroxide System Supported by Controlled-release Alkali Source
Published on: February 6, 2018
Advanced oxidation process with hydrogen peroxide and sulfite for superfast degradation of micro-contaminants in
Han Chen1, Tao Lin1, Yuchen Wang1
1Ministry of Education Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes, Hohai University, Nanjing 210098, PR China; College of Environment, Hohai University, Nanjing 210098, PR China.
Abstract:
Sulfite (S(IV))-based advanced oxidation processes (AOPs) have recently gained attention as viable alternatives to peroxosulfate-based AOPs due to their low toxicity and cost-effectiveness. Hydrogen peroxide (H2O2) is widely recognized as an effective and environmentally friendly oxidant in drinking water treatment. This study introduces a novel H2O2/S(IV) AOP based on the observation of over-stoichiometric consumption of S(IV) by H2O2. This system generates a variety of reactive species (RSs), including sulfate radicals (SO4•-), hydroxyl radicals (•OH), superoxide anion radicals (O2•-), and singlet oxygen (1O2), to achieve rapid degradation of micro-contaminants in drinking water. With dosages of H2O2 and S(IV) set at 0.1 mM and 1.0 mM, respectively, the H2O2/S(IV) system generated concentrations of SO4•-, •OH, O2•- and 1O2 at approximately 10-12, 10-12, 10-13, and 10-13 M. This occurred even in complex water matrices containing bicarbonate (HCO3-), chloride (Cl-), and humic acid (HA) across a pH range of 3.0-11.0. A kinetic model was developed to simulate RS generation and predict the pseudo-first-order degradation rate constants (k) for 15 micro-contaminants in the H2O2/S(IV) system. Theoretical calculations indicated that micro-contaminants with high EHOMO and low ΔE (i.e., ELUMO - EHOMO) are more susceptible to degradation. Compared to UV/H2O2, UV/S(IV), Fe2+/H2O2, and Fe3+/S(IV) systems, the H2O2/S(IV) system demonstrated faster degradation rates, with k values 1-2 orders of magnitude higher, towards micro-contaminants. Additionally, the H2O2/S(IV) system was more effective in controlling disinfection by-product formation during subsequent chlorination, highlighting the application potential of the H2O2/S(IV) system in drinking water treatment.
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