Multifactor Statistical Analysis of H2O2-Enhanced Photodegradation of Nicotine and Phosphamidon

被引:15
作者
Nienow, Amanda M. [1 ]
Hua, Inez [1 ]
Poyer, Irene C. [1 ]
Bezares-Cruz, Juan Cesar [1 ]
Jafvert, Chad T. [1 ]
机构
[1] Purdue Univ, Sch Civil Engn, W Lafayette, IN 47906 USA
关键词
DISSOLVED ORGANIC-MATTER; PHOTOCATALYTIC DEGRADATION; SURFACE WATERS; RATE CONSTANTS; PESTICIDES; ORGANOPHOSPHORUS; PHOTOLYSIS; ACID; PHARMACEUTICALS; INSECTICIDES;
D O I
10.1021/ie801311f
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Direct and indirect photolysis (lambda = 254 nm) of aqueous nicotine and phosphamidon were studied. A central composite design was used to explore the effects of initial [H2O2] (0-10 mM), pH (2.8-11.2), and ionic strength (I-c = 0.02-0.71 M) on the rate constants of nicotine and phosphamidon separately dissolved in a surface water surrogate matrix. Five levels of each factor were included in the design. For nicotine, the fastest predicted photochemical oxidation rate constant (k = 0.43 min(-1)) occurred under the following conditions: pH = 7.5, [H2O2] = 7.5 mM, and I-c = 0.02 M. This rate constant predicts that 90% of the nicotine will react within 5.4 min under these conditions. In general, the photochemical oxidation of nicotine is more rapid at lower ionic strength and near-neutral pH values. For phosphamidon, the fastest predicted oxidation rate constant (k = 0.65 min(-1)) occurred at a pH of 7.1 and [H2O2] of 5 mM. Under these conditions, 90% of the phosphamidon would react within 3.5 min of treatment. Like nicotine, the photochemical oxidation of phosphamidon is more rapid at near-neutral pH values. Ionic strength has no significant effect on the photochemical oxidation of phosphamidon.
引用
收藏
页码:3955 / 3963
页数:9
相关论文
共 48 条
[1]  
Butler J.N., 1998, IONIC EQUILIBRIUM SO, P49
[2]   CRITICAL-REVIEW OF RATE CONSTANTS FOR REACTIONS OF HYDRATED ELECTRONS, HYDROGEN-ATOMS AND HYDROXYL RADICALS (.OH/.O-) IN AQUEOUS-SOLUTION [J].
BUXTON, GV ;
GREENSTOCK, CL ;
HELMAN, WP ;
ROSS, AB .
JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1988, 17 (02) :513-886
[3]  
Centers for Disease Control and Prevention (CDC), 2003, MMWR Morb Mortal Wkly Rep, V52, P413
[4]  
Crittenden J.C., 2005, Water treatment principles and design
[5]  
Dasenbrock CO, 2005, J FORENSIC SCI, V50, P1134, DOI 10.1520/JFS2005274
[6]   Trace humic and fulvic acid determination in natural water by cloud point extraction/preconcentration using non-ionic and cationic surfactants with FI-UV detection [J].
de Wuilloud, JCA ;
Wuilloud, RG ;
Sadi, BBM ;
Caruso, JA .
ANALYST, 2003, 128 (05) :453-458
[7]   Photoassisted iron compound catalytic degradation of organophosphorous pesticides with hydrogen peroxide [J].
Doong, RA ;
Chang, WH .
CHEMOSPHERE, 1998, 37 (13) :2563-2572
[8]   Photoassisted titanium dioxide mediated degradation of organophosphorus pesticides by hydrogen peroxide [J].
Doong, RA ;
Chang, WH .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 1997, 107 (1-3) :239-244
[9]  
Faust S.D., 1981, Chemistry of Natural Waters
[10]   Effects of nicotine on hydroxyl free radical formation in vitro and on MPTP-induced neurotoxicity in vivo [J].
Ferger, B ;
Spratt, C ;
Earl, CD ;
Teismann, P ;
Oertel, WH ;
Kuschinsky, K .
NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 1998, 358 (03) :351-359