4.7 Article

Kinetics and removal pathwayof basic fuchsin by electrochemical oxidization

期刊

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jelechem.2020.114792

关键词

Basic Fuchsin; Electrochemical degradation; Reaction kinetics; Pathway; Biotoxicity

资金

  1. National Primary Research & Development Plan of China [2018YFE0120300]
  2. Natural Science Foundation of Zhejiang Province of China [LY19E080023]
  3. Zhejiang Shuren University Basic Scientific Research Special Funds [2020XZ012]
  4. Introduce Talents Project of Huangshan University [2015xkjq008]
  5. College Students' Innovative Entrepreneurial Training Project [201810375009, 201710375051]
  6. Innovation Foundation ofAnhui Province [2020XZX005]

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In this study, Basic Fuchsin was decomposed by electrochemical oxidization and the kinetic parameters, dominant reaction routes, intermediates, energy cost evaluation, and biotoxicity were systematically discussed. The decolorization process was found to be a pseudo first-order reaction with different apparent rate constants at various temperatures. The main reaction processes included electropolymerization reaction, oxidation cleavage reaction, free radical reaction, and open ring reaction, resulting in decreased electrical energy consumption and reduced eco-toxicity of Basic Fuchsin.
In present paper Basic Fuchsin was decomposed by electrochemical oxidization (EO).Kinetic parameters, dominant reaction routes, intermediates, energy cost evaluation and biotoxicity were also discussed systematically.Decolorization of Basic Fuchsin by potentiostatic experiments was fitted to be pseudo first-order reaction. The apparent rate constants were obtained as 7.33 ? 10?4, 1.46 ? 10?3, 1.71 ? 10?3, 2.29 ? 10?3 and 3.9 ? 10?3 min?1 at temperatures of 293, 303, 313, 323 and 333 K, respectively. The apparent activation energy was calculated as 30.82 kJ?mol?1 at 1.2 Vvs.SCE. The diffusion coefficient D, electron transfer number and the transfer coefficient?were 1.66 ? 10?7 cm2/s, 1 and 0.775, respectively. The current-time integral curve manifested that the total electric quantity consumed was only 3.37C compared with theoretical full oxidation electrical charge quantity 140C in anode cell. Sediments of Basic Fuchsin largely decreased the electrical energy consumption. According to Xevo-G2-Qtof-MS, the main reaction process included electropolymerization reaction,oxidation cleavage reaction, free radical reaction and open ring reaction. ? OH and ? Cl were the main free radicals. They attacked Basic Fuchsin to form di-polymer or tripolymer precipitates. Furthermore, the acute toxicity assessment showed that this degradation process could greatly reduce the eco-toxicity of Basic Fuchsin.

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