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1

Gusain, Deepak, and Faizal Bux, eds. Batch Adsorption Process of Metals and Anions for Remediation of Contaminated Water. First edition. | Boca Raton : CRC Press, 2021.: CRC Press, 2021. http://dx.doi.org/10.1201/9781003006367.

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2

Fairchild, Erik. Air stripping and carbon adsorption annotated bibliography: Treatment of contaminated ground water. [Olympia, Wash.]: Washington State Dept. of Ecology, 1988.

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3

Sheya, S. A. N. Effect of metal impurities on the adsorption of gold by activated carbon in cyanide solutions. Washington, D.C: U.S. Dept. of the Interior, Bureau of Mines, 1989.

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4

Sheya, S. A. N. Effect of metal impurities on the adsorption of gold by activated carbon in cyanide solutions. Washington, DC: Dept. of the Interior, 1989.

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5

Volesky, Bohumil. Sorption and biosorption. St. Lambert, Québec: BV Sorbex, 2003.

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6

Ulewicz, Małgorzata. Separacja jonów metali nieżelaznych w procesie transportu przez ciekłe membrany zawierające związki makrocykliczne. Częstochowa: Wydawn. Wydziału Inżynierii Procesowej, Materiałowej i Fizyki Stosowanej, Politechniki Częstochowskiej, 2011.

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7

Bierau, Horst. Process integration of cell disruption and fluidised bed adsorption of microbial enzymes: Application to the retro-design of the purification of L-asparaginase. Birmingham: University of Birmingham, 2000.

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8

Ryabov, Vladimir. Oil and Gas Chemistry. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1017513.

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The textbook provides up-to-date data on the composition and properties of hydrocarbons and other oil and gas compounds, on the physical and chemical methods and methods for separating and identifying oil components (molecular spectroscopy, mass spectrometry, NMR spectroscopy, electron paramagnetic resonance, atomic adsorption spectroscopy, neutron activation analysis). The chemistry and mechanism of thermal and catalytic transformations of oil components in the main processes of oil raw materials processing, as well as the problems of the origin of oil and the transformation of oil in the environment are considered. Meets the requirements of the federal state educational standards of higher education of the latest generation. It is intended for training in the course "Chemistry of oil and gas", for the preparation of bachelors, masters and certified specialists in the field of training "Oil and Gas business". It can be used for training in other areas in oil and gas universities and be of interest to specialists working in the field of chemistry and technology of oil refining and in other areas of the oil and gas industry.
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9

1948-, Slejko Frank L., ed. Adsorption technology: A step-by-step approach to process evaluation and application. New York: M. Dekker, 1985.

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10

Breymann, Marta T. von. Magnesium in hemipelagic environments: Surface reactions in the sediment-pore water system. 1987.

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11

Breymann, Marta T. von. Magnesium in hemipelagic environments: Surface reactions in the sediment-pore water system. 1987.

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12

(Editor), Peter P. Radecki, John C. Crittenden (Editor), David R. Shonnard (Editor), and John L. Bulloch (Editor), eds. Emerging Separation and Separative Reaction Technologies for Process Waste Reduction: Adsorption and Membrane Systems. American Institute of Chemical Engineers, 1998.

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13

Yu-Li, Ruth Yeh. Treatment of dye wastewaters by adsorption with and without the bio-oxidation process. 1995.

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14

Huang, C. P. Removal of toxic heavy metals from contaminated groundwater by a fungal adsorption process. 1989.

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15

W, Lovesey S., Rutherford Appleton Laboratory, and Council For The Central Laboratory of The Research Councils., eds. Diffraction and adsorption of x-rays by 3d transition ions: The 1s 3d process. Chilton: Rutherford Appleton Laboratory, 1998.

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16

Horn, Carsten Stefan. Downstream processing with affinity chromatography: A study of a continuous process for biospecific adsorption. 1993.

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17

Kulprathipanja. Industrial Liquid Adsorptive Separation Process. Taylor & Francis, 2007.

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18

Winkler, Adolf. Reaction studies on nanostructured surfaces. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.013.12.

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This article examines the properties of some self-organized nanostructured surfaces with respect to specific model reactions, from a surface-science point of view. It begins with an overview of the most important types of nanostructured surfaces, their preparation and characterization. It then considers the fundamentals of reaction processes, focusing on the kinetics and dynamics of adsorption and desorption. It also describes the experimental techniques used in the context of reaction studies under ultrahigh-vacuum conditions. Finally, it presents some experimental results of model reactions, including hydrogen adsorption and desorption on stepped nickel surfaces, methanol adsorption on self-assembled copper-copper oxide surfaces, and hydrogen desorption and water formation on vanadium-oxide nanostructures on palladium surfaces.
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19

B, Keefer, and Canadian Fusion Fuels Technology Project., eds. Low inventory adsorptive process for tritium extraction & purification. Mississauga, Ont: Canadian Fusion Fuels Technology Project, 1990.

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20

Aveyard, Bob. Surfactants. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780198828600.001.0001.

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Characteristically, surfactants in aqueous solution adsorb at interfaces and form aggregates (micelles of various shapes and sizes, microemulsion droplets, and lyotropic liquid crystalline phases). This book is about the behaviour of surfactants in solution, at interfaces, and in colloidal dispersions. Adsorption at liquid/fluid and solid/liquid interfaces, and ways of characterizing the adsorbed surfactant films, are explained. Surfactant aggregation in systems containing only an aqueous phase and in systems with comparable volumes of water and nonpolar oil are each considered. In the latter case, the surfactant distribution between oil and water and the behaviour of the resulting Winsor systems are central to surfactant science and to an understanding of the formation of emulsions and microemulsions. Surfactant layers on particle or droplet surfaces can confer stability on dispersions including emulsions, foams, and particulate dispersions. The stability is dependent on the surface forces between droplet or particle surfaces and the way in which they change with particle separation. Surface forces are also implicated in wetting processes and thin liquid film formation and stability. The rheology of adsorbed films on liquids and of bulk colloidal dispersions is covered in two chapters. Like surfactant molecules, small solid particles can adsorb at liquid/fluid interfaces and the final two chapters focus on particle adsorption, the behaviour of adsorbed particle films and the stabilization of Pickering emulsions.
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21

Vang, R. T., S. Wendt, and F. Besenbacher. Nanocatalysis. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.12.

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This article discusses nanocatalysis and especially the interrelation between the structure, composition and properties of catalysts. It begins with a review of techniques that have been developed and employed for surface characterization, which can be divided intothree main areas: spectroscopy, diffraction, and microscopy. After describing the nanocharacterization tools, the article considers the theoretical underpinnings of catalysts and catalytic processes. It also examines how detailed atomic-scale insight into elementary surface processes relevant to catalysis can be obtained mainly by means of high-resolution scanning tunnelling microscope studies on single-crystal surfaces. More specifically, it explores the surface structure, adsorption, dissociation and diffusion, and surface chemical reactions of catalysts. The article also looks at the design of new catalysts from first principles and concludes with an assessment of nanocatalysts and transmission electron microscope studies of nanoclusters on high surface area supports.
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