10. Lipids in Water-Surface Microlayers and Foams
261
Paterson, M.P.; Spillane, K.T. Surface films and the production of sea salt aerosol. Q. J. R
Meteorol. Soc. 95:526-534; 1969.
Persson, A; Osterberg, E.; Dostalek, M. Biosurfactant production by Pseudomonas fluorescens 378: growth and product characteristics. Appl. Microbio!. Biotechnol. 29: 1-4;
1988.
Pojasek, RB.; Zajicek, O.T. Surface microlayers and foams-source and metal transport in
aquatic systems. Water Res. 12:7-10; 1978.
Powalla, M.; Lang, S.; Wray, Y. Penta- and disaccharide lipid formation by Nocardia
corynebacteroides grown on n-alkanes. Appl. Microbiol. Biotechnol. 31 :473-479;
1989.
Ramsay, B.; McCarthy, J.; Guerra-Santos, L.; Kappeli, 0.; Feichter, A; Margaritis, A
Biosurfactant production and diauxic growth of Rhodococcus aurantiacus when using
n-alkanes as the carbon source. Can. J. Microbiol. 34:1209-1212; 1988.
Rathbun, RE.; Tai, D.1.1. Gas-film coefficients for streams. J. Environ. Eng. Div. ASCE
109:1111-1127; 1983.
Rathbun, RE.; Tai, D.J.J. Volatilization of organic compounds from streams. Environ. Eng.
Div. ASCE 108:973-989; 1982.
Roch, E; Alexander, M. Biodegradation of hydrophobic compounds in the presence of
surfactants. Environ. Toxico!. Chern. 14: 1151-1158; 1995.
Schramm, L.L.; Wassmuth, E Foams: basic principles. In: Schramm, L.L., ed. Foams:
Fundamentals and Applications in the Petroleum Industry. Washington, DC: American
Chemical Society; 1994:p. 3-45.
Schwarzenbach, RP. Assessing the behaviour and fate of hydrophobic organic compounds
in the aquatic environment-general concepts and case studies emphasizing volatile
halogenated hydrocarbons. Habilitation thesis, Swiss Federal Institute of Technology,
Zurich; 1983.
Schwarzenbach, RP.; Gschwend, P.M.; Imboden, D.M. Environmental Organic Chemistry.
New York: John Wiley & Sons, Inc.; 1993.
Sharp, J.H. Excretion of organic matter by marine phytoplankton: do healthy cells do it?
Limnol. Oceanogr. 22:381-399; 1977.
Sieburth, J. Bacteriological samplers for air-water and water-sediment interfaces. Trans.
Joint Conf. MTS and ASLO, Washington, DC; 1965:p. 1064-1068.
Simoneit, B.RT.; Halpern, H.I.; Didyk, B.M. Lipid productivity of a high Andean lake. In:
Trudinger, P.A; Walter, M.R.; Ralph, B.J., eds. Biogeochemistry of Ancient and Modem
Environments. Berlin: Springer-Verlag; 1980:p. 201-210.
Sodergren, A Origin and composition of surface slicks in lakes of different trophic status.
Limnol. Oceanogr. 32:1307-1316; 1987.
Sodergren, A Origin of 14C and 32p labelled lipids moving to and from freshwater surface
rnicrolayers. Oikos 33:278-289; 1979.
Stobbe, H.; Peschel, G. Experimental determination of static permittivity of extreme thin
liquid layers of water dependent on their thickness. Colloid Polym. Sci. 275:162-169;
1997.
Stumm, w.; Morgan, J.J. Aquatic Chemistry. New York: John Wiley & Sons; 1981.
Szekielda, K.H., Kupferman, S.L.; Klemas, Y.; Polis, D.E Element enrichment in organic
films and foams associated with aquatic frontal systems. J. Geophys. Res. 77:52785282; 1971.
Thangamani, S.; Shreve, G.S . Effect of anionic biosurfactant on hexadecane partitioning in
multiphase systems. Env. Sci. Tech. 28:1993-2000; 1994.
Précédent

- 276/333

Suivant