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Download Adsorption of Metals by Geomedia II: Variables, Mechanisms, by Mark Barnett, Douglas Kent PDF

By Mark Barnett, Douglas Kent

Adsorption of Metals through Geomedia II serves as a wanted source for this subject which has got a lot awareness in past times 25 years. The publication offers an in-depth evaluate of the sector, by way of a number of chapters that record the present prestige of adsorption examine for quite a few metals by means of geomedia starting from person minerals to sediments and soils. Adsorption mechanisms are unique and precipitation is gifted as a different sorption approach. almost all elements affecting the level of steel adsorption are tested, together with the consequences of chosen anions, pageant between metals, pH, steel focus, loading, variable steel adsorption capability, ionic power, hydrogen trade and stoichiometry, and solids focus. numerous adsorption types are in short offered and a few are used to increase laboratory stories to box websites. this can be a compilation of 25 peer reviewed papers from one of the 60+ platform and poster displays of the symposium "Adsorption of Metals to Geomedia II" on the American Chemical Society (ACS) assembly, March 27-29, 2006 in Atlanta, Georgia, united states. This symposium is a follow-up to the unique held in 1996. * research the instruments and methods from best lecturers and specialists * One cease functional source and advisor for these within the box* retain trained and recent on all of the most modern developments in expertise

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Additional resources for Adsorption of Metals by Geomedia II: Variables, Mechanisms, and Model Applications

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H. (1996). A surface structural approach to ion adsorption: The charge distribution (CD) model. J. , 179, 488–508. , & Van Riemsdijk, W. H. (1999). Effect of different crystal faces on experimental interaction form and aggregation of hematite. Langmuir, 15, 8045–8051. , & Van Riemsdijk, W. H. (2006). On the relationship between charge distribution, surface hydration, and the structure of the interface of metal hydroxides. J. , 301, 1–18. , & Van Riemsdijk, W. H. (1996). Intrinsic proton affinity of reactive surface groups of metal (hydr)oxides: The bond valence principle.

J. , 133, 105–117. Hochella, M. F. , Moore, J. , & Putnis, A. (1999). A TEM study of samples from acid mine drainage systems: Metal-mineral association with implications for transport. Geochim. Cosmochim. Acta, 63, 3395–3406. Hofstetter, T. , & Schwarzenbach, R. P. (2006). Reduction of nitroaromatic compounds by Fe(II) species associated with iron-rich smectites. Environ. Sci. , 40, 235–242. , Doyle, C. , Brown, G. E. , Nelson, E. , & Chambers, S. A. (2000). Reaction of water with the (100) and (111) surfaces of Fe3O4.

Banfield, J. F. (2005). Nanoparticulate iron oxide minerals in soils and sediments: Unique properties and contaminant scavenging mechanisms. J. Nanopart. , 7, 409–433. Weidler, P. , Hug, S. , Wetche, T. , & Hiemstra, T. (1998). Determination of growth rates of (100) and (110) faces of synthetic goethite by scanning force microscopy. Geochim. Cosmochim. Acta, 62, 3407–3412. , Van Hove, M. , & Somorjai, G. A. (1993). Surface structure determination of an oxide film grown on a foreign substrate: Fe3O4 multilayer on Pt(111) identified by low energy electron diffraction.

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