Environmental Engineering Reference
In-Depth Information
References
1. Torres, L.G., Vega, A.S., Beltran, N.A., Jimenez, B.E. (1998) Production and characteriza-
tion of a Ca-alginate biocatalyst for removal of phenol and chlorophenols from wastewaters.
Process Biochemistry , 33, 625-634.
2. Pepper, I.L., Gentry, T.J., Newby, D.T., Roane, T.M., Josephson, K.L. (2002) The role of
cell bioaugmentation and gene bioaugmentation in the remediation of co-contaminated soils.
Environmental Health Perspectives , 110, 943-946.
3. Boon, N., Top, E.M., Verstraete, W., Siciliano, S.D. (2003) Bioaugmentation as a tool to
protect the structure and function of an activated-sludge microbial community against a
3-chloroaniline shock load. Applied and Environmental Microbiology , 69(3), 1511-1520.
4. Gentry, T.J., Rensing, C., Pepper, I.L. (2004) New approach for bioaugmentation as a
remediation technology. Critical Reviews in Environmental Science and Technology , 34,
447-494.
5. Braud, A., Jezequel, K., Lebeau, T. (2007) Impact of substrates and cell immobilization on
siderophore activity by Pseudomonads in a Fe and/or Cr, Hg, Pb containing-medium. Journal
of Hazardous Materials , 144, 229-239.
6. Jittawattanarat, R., Kostarelos, K., Khan, E. (2007a) Immobilized cell augmented activated
sludge process for treating wastewater containing hazardous compounds. Water Environment
Research , 79, 461-471.
7. Siripattanakul, S., Wirojanagud, W., McEvoy, J.M., Casey, F.X.M., Khan, E. (2009) Atrazine
removal in agricultural infiltrate by bioaugmented polyvinyl alcohol immobilized and free
Agrobacterium radiobacter J14a: a sand column study. Chemosphere , 74, 308-313.
8. Jamai, L., Sendide, K., Ettayebi, K., Errachidi, F., Hamdouni-Alami, O., Tahri-Jouti,
M. A., McDermott, T., Ettayebi, M. (2001) Physiological difference during ethanol fermenta-
tion between calcium alginate-immobilized Candida tropicalis and Saccharomyces cerevisiae .
FEMS Microbiology Letters , 204, 375-379.
9. Najafpour, G., Younesi, H., Ismail, K.K.S. (2004) Ethanol fermentation in an immobilized
cell reactorusing Saccharomyces cerevisiae . Bioresource Technology , 92, 251-260.
10. McLoughlin, A.J. (1994) Controlled release of immobilized cells as a strategy to regulate
ecological competence of inocula. Advances in Biochemical Engineering/ Biotechnology , 51,
1-45.
11. van Veen, J.A., van Overbeek, L.S., van Elsas, J.D. (1997) Fate and activity of microorganism
introduced into soil. Microbiology and Molecular Biology Reviews , 61, 121-135.
12. Khan, E. Yang, P.Y., Kinoshita, C.M. (1994) Bioethanol production from dilute feedstock.
Bioresource Technology , 4, 29-38.
13. Yang, P.Y., Ma, T., Chen, H.J. (1997a) The PEMMC process for land-limited small
wastewater-treatment plants. Bioresource Technology , 60, 35-42.
14. Yang, P.Y., Zhang, Z.Q., Jeong, B.G. (1997b) Simultaneous removal of carbon and nitrogen
using an entrapped-mixed-microbial-cell process. Water Research , 31, 2617-2625.
15. Chen, K.C., Lee, S.C., Chin, S.C., Houng, J.Y. (1998) Simultaneous carbon-nitrogen
removal in wastewater using phosphorylated PVA-immobilized microorganisms. Enzyme and
Microbial Technology , 23, 311-320.
16. An, M., Lo, K.V. (2001) Acitivated sludge immobilization using the PVA-alginate-borate
method. Journal of Environmental Science and Health Part A-Toxic/Hazardous Substances
and Environmental Engineering , 36, 101-115.
17. Wu, S.Y., Lin, C.N., Chang, J.S., Lee, K.S., Lin, P.J. (2002) Microbial hydrogen production
with immobilized sewage sludge. Biotechnology Progress , 18, 921-926.
18. Ha, J., Engler, C.R., Wild, J.R. (2009) Biodegradation of coumaphos, chlorferon, and
diethylthiophosphate using bacteria immobilized in Ca-alginate gel beads. Bioresource
Technology , 100, 1138-1142.
19. Li, H., Li, P., Hua, T., Zhang, Y., Xiong, X., Gong, Z. (2005a) Bioremediation of contaminated
surface water by immobilized Micrococcus roseus . Environmental Technology , 26, 931-939.
Search WWH ::




Custom Search