Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate

A novel inorganic polymer flocculant, biopolymeric ferric sulfate (BPFS), was prepared by immobilization technology of microorganisms and by oxidation of ferrous sulfate using domestic Thiobacillus ferrooxidans (T. f) under acidic condition. T. f was isolated on the agarose single-plate medium, whic...

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Main Authors: Xiaohui Xu, Min Lu, Liu Yang, Xiaohui Guan
Format: Article
Language:English
Published: Hindawi Limited 2019-01-01
Series:Journal of Chemistry
Online Access:http://dx.doi.org/10.1155/2019/3967370
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spelling doaj-c3acff9c22aa41e8abcba8eecb72aced2020-11-25T02:14:53ZengHindawi LimitedJournal of Chemistry2090-90632090-90712019-01-01201910.1155/2019/39673703967370Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric SulfateXiaohui Xu0Min Lu1Liu Yang2Xiaohui Guan3School of Chemical Engineering, Northeast Electric Power University, Jilin 132012, ChinaSchool of Chemical Engineering, Northeast Electric Power University, Jilin 132012, ChinaSchool of Chemical Engineering, Northeast Electric Power University, Jilin 132012, ChinaSchool of Chemical Engineering, Northeast Electric Power University, Jilin 132012, ChinaA novel inorganic polymer flocculant, biopolymeric ferric sulfate (BPFS), was prepared by immobilization technology of microorganisms and by oxidation of ferrous sulfate using domestic Thiobacillus ferrooxidans (T. f) under acidic condition. T. f was isolated on the agarose single-plate medium, which exhibited an unusual trait on the utilization of low concentration of the nitrogen source and phosphorus as the nutrient substance. Under the optimal conditions, the microorganism could grow and reproduce normally and maintain the strong catalytic oxidation activity to Fe2+. The immobilization of T. f on the polyurethane as the support matrix was investigated. Cycling batch operation was applied to the preparation of 40 kg/m3, 60 kg/m3, and 80 kg/m3 BPFS when the optimal conditions are pH value of 1.8, circulation flow rate of 0.28–0.30 L/h, and reaction temperature of 28 ± 1°C. When the prepared BPFS and SPFS (solid biopolymeric ferric sulfate) were used to dispose Songhua River water, the removal rate of turbidity and CODMn of BPFS was slightly better than that of SPFS. The removal efficiencies of turbidity and CODMn by BPFS could reach 93.9% and 79.7%, respectively. The result suggests that the BPFS has good flocculating activity.http://dx.doi.org/10.1155/2019/3967370
collection DOAJ
language English
format Article
sources DOAJ
author Xiaohui Xu
Min Lu
Liu Yang
Xiaohui Guan
spellingShingle Xiaohui Xu
Min Lu
Liu Yang
Xiaohui Guan
Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate
Journal of Chemistry
author_facet Xiaohui Xu
Min Lu
Liu Yang
Xiaohui Guan
author_sort Xiaohui Xu
title Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate
title_short Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate
title_full Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate
title_fullStr Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate
title_full_unstemmed Immobilized Microbial Catalytic Oxidation Preparation and Application of Biopolymeric Ferric Sulfate
title_sort immobilized microbial catalytic oxidation preparation and application of biopolymeric ferric sulfate
publisher Hindawi Limited
series Journal of Chemistry
issn 2090-9063
2090-9071
publishDate 2019-01-01
description A novel inorganic polymer flocculant, biopolymeric ferric sulfate (BPFS), was prepared by immobilization technology of microorganisms and by oxidation of ferrous sulfate using domestic Thiobacillus ferrooxidans (T. f) under acidic condition. T. f was isolated on the agarose single-plate medium, which exhibited an unusual trait on the utilization of low concentration of the nitrogen source and phosphorus as the nutrient substance. Under the optimal conditions, the microorganism could grow and reproduce normally and maintain the strong catalytic oxidation activity to Fe2+. The immobilization of T. f on the polyurethane as the support matrix was investigated. Cycling batch operation was applied to the preparation of 40 kg/m3, 60 kg/m3, and 80 kg/m3 BPFS when the optimal conditions are pH value of 1.8, circulation flow rate of 0.28–0.30 L/h, and reaction temperature of 28 ± 1°C. When the prepared BPFS and SPFS (solid biopolymeric ferric sulfate) were used to dispose Songhua River water, the removal rate of turbidity and CODMn of BPFS was slightly better than that of SPFS. The removal efficiencies of turbidity and CODMn by BPFS could reach 93.9% and 79.7%, respectively. The result suggests that the BPFS has good flocculating activity.
url http://dx.doi.org/10.1155/2019/3967370
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AT minlu immobilizedmicrobialcatalyticoxidationpreparationandapplicationofbiopolymericferricsulfate
AT liuyang immobilizedmicrobialcatalyticoxidationpreparationandapplicationofbiopolymericferricsulfate
AT xiaohuiguan immobilizedmicrobialcatalyticoxidationpreparationandapplicationofbiopolymericferricsulfate
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