Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system

The oxidation kinetics and mechanisms of commercial dyes by H202 and iron powder system were investigated in a well-mixed batch reactor. The three dyes studied are Reactive Red 120, Direct Blue 160 and Acid Blue 40. There are three major processes involved in the oxidation: iron powder dissolution t...

Full description

Bibliographic Details
Main Author: Chen, Rena Zhanglei
Format: Others
Published: FIU Digital Commons 1995
Subjects:
Online Access:http://digitalcommons.fiu.edu/etd/2144
id ndltd-fiu.edu-oai-digitalcommons.fiu.edu-etd-3398
record_format oai_dc
spelling ndltd-fiu.edu-oai-digitalcommons.fiu.edu-etd-33982018-01-05T15:27:47Z Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system Chen, Rena Zhanglei The oxidation kinetics and mechanisms of commercial dyes by H202 and iron powder system were investigated in a well-mixed batch reactor. The three dyes studied are Reactive Red 120, Direct Blue 160 and Acid Blue 40. There are three major processes involved in the oxidation: iron powder dissolution to Fe2+, dye adsorption by iron powder and dye oxidation by Fenton's reagent. Dissolution of iron powder was the initial step of adsorption and oxidation of the dyes. Dye adsorption obeyed the Langmuir adsorption isotherm. Both dissolution and adsorption were favorable at pH 2.0 to 2.5. Oxidation by Fenton's reagent was the major process contributed to decolorization. The optimal pH ranged from 3.0 to 3.5. The optimal ratio of H202 to iron metal was 0.001 M to 1.0 g/L. The initial oxidation rate followed pseudo-first-order kinetics. The mechanisms of iron dissolution, dye adsorption and oxidation were proposed in order to explain the experimental phenomena. 1995-03-30T08:00:00Z text application/pdf http://digitalcommons.fiu.edu/etd/2144 FIU Electronic Theses and Dissertations FIU Digital Commons Environmental Engineering
collection NDLTD
format Others
sources NDLTD
topic Environmental Engineering
spellingShingle Environmental Engineering
Chen, Rena Zhanglei
Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system
description The oxidation kinetics and mechanisms of commercial dyes by H202 and iron powder system were investigated in a well-mixed batch reactor. The three dyes studied are Reactive Red 120, Direct Blue 160 and Acid Blue 40. There are three major processes involved in the oxidation: iron powder dissolution to Fe2+, dye adsorption by iron powder and dye oxidation by Fenton's reagent. Dissolution of iron powder was the initial step of adsorption and oxidation of the dyes. Dye adsorption obeyed the Langmuir adsorption isotherm. Both dissolution and adsorption were favorable at pH 2.0 to 2.5. Oxidation by Fenton's reagent was the major process contributed to decolorization. The optimal pH ranged from 3.0 to 3.5. The optimal ratio of H202 to iron metal was 0.001 M to 1.0 g/L. The initial oxidation rate followed pseudo-first-order kinetics. The mechanisms of iron dissolution, dye adsorption and oxidation were proposed in order to explain the experimental phenomena.
author Chen, Rena Zhanglei
author_facet Chen, Rena Zhanglei
author_sort Chen, Rena Zhanglei
title Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system
title_short Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system
title_full Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system
title_fullStr Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system
title_full_unstemmed Catalytic oxidation kinetics and mechanisms of commercial dyes by H2O2/iron powder system
title_sort catalytic oxidation kinetics and mechanisms of commercial dyes by h2o2/iron powder system
publisher FIU Digital Commons
publishDate 1995
url http://digitalcommons.fiu.edu/etd/2144
work_keys_str_mv AT chenrenazhanglei catalyticoxidationkineticsandmechanismsofcommercialdyesbyh2o2ironpowdersystem
_version_ 1718581046671310848