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Effect of solution ionic strength and iron coatings on mineral grains on the sorption of bacterial cells to quartz sand

Journal Article · · Applied and Environmental Microbiology
OSTI ID:111396
; ; ;  [1]
  1. Univ. of Virginia, Charlottesville, VA (United States)
Understanding the interaction between bacterial cells and solid surfaces is essential to our attempts to quantify and predict the transport of microbes in groundwater aquifers, whether from the point of view of contamination or from that of bioremediation. The sorption of bacterial cells suspended in groundwater to porous medium grains was examined in batch studies. Bacterial sorption to clean quartz sand yielded equilibrium, linear, adsorption isotherms that varied with the bacterial strain used and the ionic strength of the aqueous solution. Values of K{sub d} (the slope of the linear sorption isotherm) ranged from 0.55 to 6.11 ml g{sup {minus}1}, with the greatest sorption observed for the highest groundwater ionic strength. These findings are consistent with the interpretation that an increasingly compressed electrical double layer results in stronger adsorption between the like-charged mineral surface and the bacterial cells. When iron-oxyhydroxide-coated sand was used, however, all of the added bacteria were adsorbed up to a threshold of 6.93 x 10{sup 8} cells g of coated sand{sup {minus}1}, beyond which no further adsorption occurred. The irreversible, threshold adsorption is the result of a strong electrostatic attractive between the sesquioxide coating and the bacterial cells. Experimental results of adsorption in mixtures of quartz and Fe(III)-coated sand were successfully predicted by a simple additive model for sorption by the two substrate phases. Even small amounts of Fe(III)-coated sand in a mixture influenced the extent of adsorption of bacterial cells. A quantitative description of adsorption in the mixtures can be realized by using a linear isotherm for reversible adsorption to the quartz grains with a y intercept that represents the number of cells irreversibly adsorbed to the Fe(III)-coated sand. 45 refs., 6 figs.
DOE Contract Number:
FG05-89ER60842
OSTI ID:
111396
Journal Information:
Applied and Environmental Microbiology, Journal Name: Applied and Environmental Microbiology Journal Issue: 9 Vol. 60; ISSN AEMIDF; ISSN 0099-2240
Country of Publication:
United States
Language:
English

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