Kinetics and efficiency of H2O2 activation by iron-containing minerals and aquifer materials

被引:165
作者
Anh Le-Tuan Pham [1 ]
Doyle, Fiona M. [2 ]
Sedlak, David L. [1 ]
机构
[1] Univ Calif Berkeley, Dept Civil & Environm Engn, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Dept Mat Sci & Engn, Berkeley, CA 94720 USA
关键词
Fenton reaction; Advanced oxidation process; Groundwater treatment; Iron oxides; Hydrogen peroxide; Dissolved silica; HYDROGEN-PEROXIDE DECOMPOSITION; CATALYTIC DECOMPOSITION; CHEMICAL OXIDATION; OXIDES; DEGRADATION; REACTIVITY; IRON(III); QUINOLINE; SILICA; SOILS;
D O I
10.1016/j.watres.2012.09.020
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
To gain insight into factors that control H2O2 persistence and (OH)-O-center dot yield in H2O2-based in situ chemical oxidation systems, the decomposition of H2O2 and transformation of phenol were investigated in the presence of iron-containing minerals and aquifer materials. Under conditions expected during remediation of soil and groundwater, the stoichiometric efficiency, defined as the amount of phenol transformed per mole of H2O2 decomposed, varied from 0.005 to 0.28%. Among the iron-containing minerals, iron oxides were 2-10 times less efficient in transforming phenol than iron-containing clays and synthetic iron-containing catalysts. In both iron-containing mineral and aquifer materials systems, the stoichiometric efficiency was inversely correlated with the rate of H2O2 decomposition. In aquifer materials systems, the stoichiometric efficiency was also inversely correlated with the Mn content, consistent with the fact that the decomposition of H2O2 on manganese oxides does not produce (OH)-O-center dot. Removal of iron and manganese oxide coatings from the surface of aquifer materials by extraction with citrate-bicarbonate-dithionite slowed the rate of H2O2 decomposition on aquifer materials and increased the stoichiometric efficiency. In addition, the presence of 2 mM of dissolved SiO2 slowed the rate of H2O2 decomposition on aquifer materials by over 80% without affecting the stoichiometric efficiency. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:6454 / 6462
页数:9
相关论文
共 29 条
[1]   Soil organic matter-hydrogen peroxide dynamics in the treatment of contaminated soils and groundwater using catalyzed H2O2 propagations (modified Fenton's reagent) [J].
Bissey, Lauren L. ;
Smith, Jeffrey L. ;
Watts, Richard J. .
WATER RESEARCH, 2006, 40 (13) :2477-2484
[2]   Factors affecting effectiveness and efficiency of DNAPL destruction using potassium permanganate and catalyzed hydrogen peroxide [J].
Crimi, ML ;
Siegrist, RL .
JOURNAL OF ENVIRONMENTAL ENGINEERING-ASCE, 2005, 131 (12) :1724-1732
[3]   Colorimetric determination of hydrogen peroxide [J].
Eisenberg, GM .
INDUSTRIAL AND ENGINEERING CHEMISTRY-ANALYTICAL EDITION, 1943, 15 :327-328
[4]   Enhanced Reactivity of Superoxide in Water-Solid Matrices [J].
Furman, Olha ;
Laine, Derek F. ;
Blumenfeld, Alexander ;
Teel, Amy L. ;
Shimizu, Kenichi ;
Cheng, I. Francis ;
Watts, Richard J. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (05) :1528-1533
[5]   Catalytic decomposition of hydrogen peroxide and 2-chlorophenol with iron oxides [J].
Huang, HH ;
Lu, MC ;
Chen, JN .
WATER RESEARCH, 2001, 35 (09) :2291-2299
[6]  
Huling S.G., 2006, In-situ chemical oxidation
[7]   Influence of peat on Fenton oxidation [J].
Huling, SG ;
Arnold, RG ;
Sierka, RA ;
Miller, MR .
WATER RESEARCH, 2001, 35 (07) :1687-1694
[8]   Geology and characterization of two hydrothermal nontronites from weathered metamorphic rocks at the Uley Graphite Mine, South Australia [J].
Keeling, JL ;
Raven, MD ;
Gates, WP .
CLAYS AND CLAY MINERALS, 2000, 48 (05) :537-548
[9]   ISCO for Groundwater Remediation: Analysis of Field Applications and Performance [J].
Krembs, Friedrich J. ;
Siegrist, Robert L. ;
Crimi, Michelle L. ;
Furrer, Reinhard F. ;
Petri, Benjamin G. .
GROUND WATER MONITORING AND REMEDIATION, 2010, 30 (04) :42-53
[10]  
Kunze G.W., 1986, Methods of soil analysis part 1-physical and mineralogical methods, P97