DISTRIBUTION OF NONIONIC SURFACTANT AND PHENANTHRENE IN A SEDIMENT AQUEOUS SYSTEM

被引:160
作者
EDWARDS, DA
ADEEL, Z
LUTHY, RG
机构
[1] CARNEGIE MELLON UNIV,DEPT CIVIL & ENVIRONM ENGN,PITTSBURGH,PA 15213
[2] H & A NEW YORK,ROCHESTER,NY 14604
关键词
D O I
10.1021/es00057a027
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A nonionic surfactant, Triton X-100, can act either to enhance or to inhibit phenanthrene sorption from bulk solution onto Lincoln fine sand, depending on the bulk solution surfactant concentration. The distribution of phenanthrene between the sand and the bulk solution is characterized by a partition coefficient that can range in value from less than 0.04 to nearly 10 times that in the absence of surfactant. Sorbed Triton X-100 acts to enhance phenanthrene sorption; not only does the sorbed surfactant directly increase the fractional organic carbon content of the sand but also, on a carbon-normalized basis, the sorbed surfactant is much more effective as a sorbent for phenanthrene than is humic matter. Conversely, Triton X-100 micelles in the bulk solution can greatly enhance the solubilization of phenanthrene and, thus, its desorption from the sand. The balance between surfactant sorption and solubilization effects on the sorption of phenanthrene depends on a number of factors, principally the surfactant concentration and the nature of the solid sorbent. Significant differences in surfactant sorption and its effects on the solubilization of phenanthrene are noted between the low organic carbon sand described here and previously described systems with soils of moderate organic carbon content.
引用
收藏
页码:1550 / 1560
页数:11
相关论文
共 50 条
[21]   DISTRIBUTION OF METAL-CHELATES BETWEEN AQUEOUS AND SURFACTANT PHASES SEPARATED FROM A MICELLAR SOLUTION OF A NONIONIC SURFACTANT [J].
WATANABE, H ;
SAITOH, T ;
KAMIDATE, T ;
HARAGUCHI, K .
MIKROCHIMICA ACTA, 1992, 106 (1-2) :83-90
[22]   Micellization of nonionic surfactant dimers and of the corresponding surfactant monomers in aqueous solution [J].
Paddon-Jones, G ;
Regismond, S ;
Kwetkat, K ;
Zana, R .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2001, 243 (02) :496-502
[23]   Influence of nonionic surfactant on attached biofilm formation and phenanthrene bioavailability during simulated surfactant enhanced bioremediation [J].
Seo, Youngwoo ;
Bishop, Paul L. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (20) :7107-7113
[24]   Selective sorption removal of phenanthrene by resins from anionic and nonionic surfactant solutions [J].
Yang, Kun ;
Zeng, Yaxiong ;
Zhou, Chenkai .
ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 252
[25]   SORPTION AND TRANSPORT KINETICS OF A NONIONIC SURFACTANT THROUGH AN AQUIFER SEDIMENT [J].
ADEEL, Z ;
LUTHY, RG .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1995, 29 (04) :1032-1042
[26]   SORPTION AND TRANSPORT KINETICS OF A NONIONIC SURFACTANT THROUGH AN AQUIFER SEDIMENT [J].
ADEEL, Z ;
LUTHY, RG .
ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1995, 210 :129-ENVR
[27]   Soret effect in a nonionic surfactant system [J].
Ning, Hui ;
Kita, Rio ;
Wiegand, Simone .
SMART COLLOIDAL MATERIALS, 2006, 133 :111-+
[28]   Colloidal phase transitions in aqueous nonionic surfactant solutions [J].
Koehler, RD ;
Kaler, EW .
LANGMUIR, 1997, 13 (09) :2463-2470
[29]   Stability of the aqueous suspensions of nanotubes in the presence of nonionic surfactant [J].
Lisunova, Milana O. ;
Lebovka, Nikolai I. ;
Melezhyk, Exander V. ;
Boiko, Yurie P. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2006, 299 (02) :740-746
[30]   Interfacial properties of aqueous nonionic fluorocarbon surfactant solutions [J].
Sharma, Suraj Chandra ;
Shrestha, Lok Kumar ;
Aramaki, Kenji .
JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2007, 28 (04) :577-581