References bibliographiques
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strain MCM B‐181 : Characterization Studies. Biotechnology progress. Vol. 15, n° 2, P.P. 228-237.
Quiton, K.G., Doma Jr., B., Futalan, C.M., Wan, M.W., 2018. Removal of chromium (VI) and
zinc (II) from aqueous solution using kaolin-supported bacterial biofilms of Gram-negative E. coli
and Gram-positive Staphylococcus epidermidis. Sustain. Environ. Res. Vol. 28, n° 5, 206–213.
Ramírez-Díaz, M. I., Díaz-Pérez, C., Vargas, E., Riveros-Rosas, H., Campos-García, J., &
Cervantes, C. (2008). Mechanisms of bacterial resistance to chromium compound. Biometals.
Vol. 21, n° 3, P.P. 321-332.
Roane, T. M., & Pepper, I. L. (2000). Microbial responses to environmentally toxic cadmium.
Microbial Ecology. Vol. 38, n° 4, P.P. 358-364.
Rodier J., 1999 : L’analyse de l’eau : Eaux naturelles, Eaux résiduaires, Eau de mer. Dunod, Paris :
7eme édition. P. 1824
Rodrigues S, Henriques B, Reis A, Duarte A, Pereira E et Römkens PFAM. 2012. Hg transfer
from contaminated soils to plants and animals. Environmental Chemistry Letters. Vol. 10, P.P. 61–
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Romanenko, V. I., & Koren’Ken, V. N. (1977). A pure culture of bacteria utilizing chromates and
bichromates as hydrogen acceptors in growth under anaerobic conditions. Mikrobiologiya, 46(3),
P.P. 414-417.
Rompré, A., Servais, P., Baudart, J., de-Roubin, M. R., & Laurent, P. (2002). Detection and
enumeration of coliforms in drinking water : current methods and emerging approaches. Journal of
microbiological methods. Vol. 49, n° 1, P.P. 31-54.
Saha, R., Mukherjee, K., Saha, I., Ghosh, A., Ghosh, S. K., & Saha, B. (2013). Removal of
hexavalent chromium from water by adsorption on mosambi (Citrus limetta) peel. Research on
Chemical Intermediates. Vol. 39, n° 5, P.P. 2245-2257.
Saha, R., Nandi, R., & Saha, B. (2011). Sources and toxicity of hexavalent chromium. Journal of
Coordination Chemistry. Vol. 64, n° 10, P.P. 1782-1806.
Sánchez-Chardi, A., Peñarroja-Matutano, C., Borrás, M., & Nadal, J. (2009). Bioaccumula-
Puranik, P. R., et Paknikar, K. M. (1999). Biosorption of lead, cadmium, and zinc by Citrobacter
strain MCM B‐181 : Characterization Studies. Biotechnology progress. Vol. 15, n° 2, P.P. 228-237.
Quiton, K.G., Doma Jr., B., Futalan, C.M., Wan, M.W., 2018. Removal of chromium (VI) and
zinc (II) from aqueous solution using kaolin-supported bacterial biofilms of Gram-negative E. coli
and Gram-positive Staphylococcus epidermidis. Sustain. Environ. Res. Vol. 28, n° 5, 206–213.
Ramírez-Díaz, M. I., Díaz-Pérez, C., Vargas, E., Riveros-Rosas, H., Campos-García, J., &
Cervantes, C. (2008). Mechanisms of bacterial resistance to chromium compound. Biometals.
Vol. 21, n° 3, P.P. 321-332.
Roane, T. M., & Pepper, I. L. (2000). Microbial responses to environmentally toxic cadmium.
Microbial Ecology. Vol. 38, n° 4, P.P. 358-364.
Rodier J., 1999 : L’analyse de l’eau : Eaux naturelles, Eaux résiduaires, Eau de mer. Dunod, Paris :
7eme édition. P. 1824
Rodrigues S, Henriques B, Reis A, Duarte A, Pereira E et Römkens PFAM. 2012. Hg transfer
from contaminated soils to plants and animals. Environmental Chemistry Letters. Vol. 10, P.P. 61–
67.
Romanenko, V. I., & Koren’Ken, V. N. (1977). A pure culture of bacteria utilizing chromates and
bichromates as hydrogen acceptors in growth under anaerobic conditions. Mikrobiologiya, 46(3),
P.P. 414-417.
Rompré, A., Servais, P., Baudart, J., de-Roubin, M. R., & Laurent, P. (2002). Detection and
enumeration of coliforms in drinking water : current methods and emerging approaches. Journal of
microbiological methods. Vol. 49, n° 1, P.P. 31-54.
Saha, R., Mukherjee, K., Saha, I., Ghosh, A., Ghosh, S. K., & Saha, B. (2013). Removal of
hexavalent chromium from water by adsorption on mosambi (Citrus limetta) peel. Research on
Chemical Intermediates. Vol. 39, n° 5, P.P. 2245-2257.
Saha, R., Nandi, R., & Saha, B. (2011). Sources and toxicity of hexavalent chromium. Journal of
Coordination Chemistry. Vol. 64, n° 10, P.P. 1782-1806.
Sánchez-Chardi, A., Peñarroja-Matutano, C., Borrás, M., & Nadal, J. (2009). Bioaccumula-
