Metolachlor dechlorination by zerovalent iron during unsaturated transport

被引:19
作者
Gaber, HM [1 ]
Comfort, SD [1 ]
Shea, PJ [1 ]
Machecek, TA [1 ]
机构
[1] Univ Nebraska, Sch Nat Resource Sci, Lincoln, NE 68583 USA
关键词
D O I
10.2134/jeq2002.0962
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Permeable zerovalent iron (Fe-0) barriers have become an established technology for remediating contaminated ground water. This same technology may be applicable for treating pesticides amenable to dehalogenation as they move downward in the vadose zone. By conducting miscible displacement experiments in the laboratory with metolachlor [2-chloro-N-(2-ethyl-6-methylphenyl)-N-(2-methoxy-1-methylethyl)acetamide; a chloroacetanilide herbicide] under unsaturated flow, we provide proof-of-concept for such an approach. Transport experiments were conducted in repacked, unsaturated soil columns attached to vacuum chambers and run under constant matrix potential (-30 kPa) and Darcy flux (approximately 2 cm d(-1)). Treatments included soil columns equipped with and without a permeable reactive barrier (PRB) consisting of a Fe-0-sand (50:50) mixture supplemented with Al-2(SO4)(3). A continuous pulse of C-14-labeled metolachlor (1.45 mM) and tritiated water ((H2O)-H-3) was applied to top of the columns for 10 d. Results indicated complete (100%) metolachlor destruction, with the dehalogenated product observed as the primary degradate In the leachate. Similar results were obtained with a 25:75 Fe-0-sand barrier but metolachlor destruction was not as efficient when unannealed iron was used or Al-2(SO4)(3) was omitted from the barrier. A second set of transport experiments used metolachlor-contaminated soil in lieu of a C-14-metolachlor pulse. Under these conditions, the iron barrier decreased metolachlor concentration in the leachate by approximately, 50%. These results provide initial evidence that permeable iron barriers can effectively reduce metolachlor leaching under unsaturated flow.
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页码:962 / 969
页数:8
相关论文
共 21 条
[1]  
CHESTERS G, 1989, REV ENVIRON CONTAM T, V110, P11
[2]   Field-scale remediation of a metolachlor-contaminated spill site using zerovalent iron [J].
Comfort, SD ;
Shea, PJ ;
Machacek, TA ;
Gaber, H ;
Oh, BT .
JOURNAL OF ENVIRONMENTAL QUALITY, 2001, 30 (05) :1636-1643
[3]   Dechlorination of the chloroacetanilide herbicides alachlor and metolachlor by iron metal [J].
Eykholt, GR ;
Davenport, DT .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1998, 32 (10) :1482-1487
[4]  
Jury W.A., 1991, SOIL PHYS
[5]  
Laase AD, 2000, CHEMICAL OXIDATION AND REACTIVE BARRIERS, P417
[6]   Trapping of Cr by formation of ferrihydrite during the reduction of chromate ions by Fe(II)-Fe(III) hydroxysalt green rusts [J].
Loyaux-Lawniczak, S ;
Refait, P ;
Ehrhardt, JJ ;
Lecomte, P ;
Génin, JMR .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2000, 34 (03) :438-443
[7]   Mineral precipitation and porosity losses in granular iron columns [J].
Mackenzie, PD ;
Horney, DP ;
Sivavec, TM .
JOURNAL OF HAZARDOUS MATERIALS, 1999, 68 (1-2) :1-17
[8]  
*MINN DEP AGR, 1997, RES 1996 SOIL SAMPL
[9]  
NORWOOD VM, 1990, LIT REV BIOL TREATME
[10]   Long-term performance of an in situ "iron wall" for remediation of VOCs [J].
O'Hannesin, SF ;
Gillham, RW .
GROUND WATER, 1998, 36 (01) :164-170