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1

Douglas, Gunnison, Pennington Judith C, Zappi Mark E, et al., eds. Assessment of mechanisms impacting N-nitrosodimethylamine fate within the North Boundary Containment System, Rocky Mountain Arsenal. U.S. Army Engineer Waterways Experiment Station, 1997.

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2

F, Hudson James. Forecasting onsite soil absorption system failure rates. U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1986.

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3

Cogger, Craig G. Septic system waste treatment in soil. Cooperative Extension, College of Agriculture & Home Economics, Washington State University, 1987.

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4

Hiltz, R. H. Design and construction of a mobile activated carbon regenerator system. U.S. Environmental Protection Agency, Hazardous Waste Engineering Research Laboratory, 1986.

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5

1943-, Rousseau Ronald W., Ferrell J. K, and Air and Energy Engineering Research Laboratory, eds. Performance and modeling of a hot potassium carbonate acid gas removal system in treating coal gas: Project summary. U.S. Environmental Protection Agency, Air and Energy Engineering Research Laboratory, 1988.

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6

Lindman, B., G. Olofsson, and P. Stenius, eds. Surfactants, Adsorption, Surface Spectroscopy and Disperse Systems. Steinkopff, 1985. http://dx.doi.org/10.1007/bfb0114294.

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7

1942-, Lindman Björn, Olofsson G, Stenius Per, Aniansson Gunnar 1924-1984, and Scandinavian Symposium on Surface Chemistry (8th : 1984 : Lund, Sweden), eds. Surfactants, adsorption, surface spectroscopy, and disperse systems. Steinkopff, 1985.

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8

Paige, Matthew Freeman. The adsorption and aggregation properties of biological systems. National Library of Canada = Bibliothèque nationale du Canada, 1999.

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9

Vinton, Steven John. Surface specific characterisation of thiophene-generic adsorption systems. University of Manchester, 1996.

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10

Chiou, Cary T. Partition and Adsorption of Organic Contaminants in Environmental Systems. John Wiley & Sons, Inc., 2002. http://dx.doi.org/10.1002/0471264326.

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11

Bharti, Bhuvnesh. Adsorption, Aggregation and Structure Formation in Systems of Charged Particles. Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-07737-6.

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12

Sapienza, Alessio, Andrea Frazzica, Angelo Freni, and Yuri Aristov. Dynamics of Adsorptive Systems for Heat Transformation. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-51287-7.

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13

Farrell, Susan. Evaluation of color infrared aerial surveys of wastewater soil absorption systems. U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1985.

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14

A, Wheeler A., and National Institute of Standards and Technology (U.S.), eds. On the Gibbs adsorption equation and diffuse interface models. U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2001.

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15

Karis, Olof. X-ray emission and resonant photoemission studies of adsorbate systems and metals. Acta Universitatis Upsaliensis, 1997.

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16

Hargett, David L. Technical assessment of low-pressure pipe wastewater injection systems. U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1987.

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17

Fu, Jaw-Kwei. Pollutant sorption to soils and sediments in organic/aqueous solvent systems. U.S. Environmental Protection Agency, Environmental Research Laboratory, 1985.

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18

Fu, Jaw-Kwei. Pollutant sorption to soils and sediments in organic/aqueous solvent systems. U.S. Environmental Protection Agency, Environmental Research Laboratory, 1985.

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19

Siegrist, Robert L. Large soil absorption systems for wastewaters from multiple-home developments. U.S. Environmental Protection Agency, Water Engineering Research Laboratory, 1986.

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20

Dombrovsky, L. A. Thermal radiation in disperse systems: An engineering approach. Begell House, 2010.

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21

Lowe, Mike. Guidelines for preparing hydrogeologic and soil reports addressing suitability for alternative wastewater disposal systems in Weber County, Utah. Utah Dept. of Natural Resources, Utah Geological Survey, 1999.

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22

Line, Michael John. A study of the adsorption of some polymers and langmuir blodgett film systems by inelastic electron tunnelling spectroscopy. De Montfort, 1994.

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23

Chappell, Mark A. Environmental chemistry of explosives and propellant compounds in soils and marine systems: Distributed source characterization and remedial technologies. Edited by American Chemical Society. Division of Environmental Chemistry. American Chemical Society, 2011.

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24

F, Tadros Th, and International Association of Colloid Scientists., eds. Polymers in colloid systems: Adsorption, stability, and flow : proceedings of an international conference, Veldhoven, the Netherlands, 7-9 September 1987. Elsevier, 1988.

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25

G, De Boer A., ed. Drug absorption enhancement: Concepts, possibilities, limitations, and trends. Harwood Academic Publishers, 1994.

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26

1942-, Touitou Elka, and Barry Brian W. 1939-, eds. Enhancement in drug delivery. CRC Press, 2007.

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27

1947-, Ghebre-Sellassie Isaac, ed. Multiparticulate oral drug delivery. M. Dekker, 1994.

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28

Choosing an adsorption system for VOC: Carbon, zeolite, or polymers? The Center, 1999.

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29

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

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30

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

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31

Hoeft, Carl E. Surfactant adsorption in single component systems. 1992.

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32

Lindmann, B., P. Stenius, and G. Olofsson. Surfactants, Adsorption, Surface Spectroscopy and Disperse Systems. Steinkopff, Dietrich, 2013.

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33

Sapienza, Alessio. Dynamics of Adsorptive Systems for Heat Transformation: Optimization of Adsorber, Adsorbent and Cycle. Springer, 2018.

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34

Partition and Adsorption of Organic Contaminants in Environmental Systems. Wiley & Sons Australia, Limited, John, 2004.

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35

Chiou, Cary T. Partition and Adsorption of Organic Contaminants in Environmental Systems. Wiley & Sons, Incorporated, John, 2003.

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36

F, Tadros Th. Polymers in Colloid Systems: Adsorption, Stability, and Flow : Proceedings. Elsevier Science Ltd, 1988.

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37

Chiou, Cary T. Partition and Adsorption of Organic Contaminants in Environmental Systems. Wiley & Sons, Incorporated, John, 2007.

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38

Chiou, C. T. Partition and Adsorption of Organic Contaminants in Environmental Systems. Wiley & Sons Canada, Limited, John, 2003.

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39

Partition and Adsorption of Organic Contaminants in Environmental Systems. Wiley-Interscience, 2002.

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40

Biological Adhesive Systems: From Nature to Technical and Medical Application. Springer, 2011.

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41

(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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42

Atnafu, Temesgen. Membrane Systems for Adsorption and Regeneration Cycle Problems in Air Drying Unit. GRIN Verlag GmbH, 2013.

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43

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
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44

Malmsten, Martin. Surfactants and Polymers in Drug Delivery (Drugs and the Pharmaceutical Science, 122). Informa Healthcare, 2002.

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45

Olkkola, Klaus T., Hugo E. M. Vereecke, and Martin Luginbühl. Drug interactions in anaesthetic practice. Edited by Michel M. R. F. Struys. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780199642045.003.0021.

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When two or more drugs are administered simultaneously, the pharmacological response may be greater or less than the sum of the effects of the individual drugs. One drug may antagonize or potentiate the effects of the other and there may be also qualitative differences in response. Although some drug interactions increase the toxicity or result in loss of therapeutic effect, others are beneficial. Indeed, modern anaesthetic techniques depend on beneficial drug interactions. A sound combination of drugs helps clinicians to increase both the efficacy and safety of drug treatment. Drugs may inter
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46

Bharti, Bhuvnesh. Adsorption, Aggregation and Structure Formation in Systems of Charged Particles: From Colloidal to Supracolloidal Assembly. Springer, 2016.

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47

Bharti, Bhuvnesh. Adsorption, Aggregation and Structure Formation in Systems of Charged Particles: From Colloidal to Supracolloidal Assembly. Springer, 2014.

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48

Adsorption, Aggregation and Structure Formation in Systems of Charged Particles: From Colloidal to Supracolloidal Assembly. Springer, 2014.

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49

Kumar, Ajay. Polyel[e]ctrolyte adsorption on wood fibers: Surface charge decay and retention in dual polymer systems. 1998.

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50

Banerjee, Diptonil, Amit Kumar Sharma, and Nirmalya Sankar Das. Nano Materials Induced Removal of Textile Dyes from Waste Water. BENTHAM SCIENCE PUBLISHERS, 2022. http://dx.doi.org/10.2174/97898150502951220101.

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Nanotechnology has progressed to the point where it can mimic natural systems such as porous membranes or the structure of leaves. Technological advances have resulted in a boom in the use of nanotechnology in different areas of engineering, including water purification systems. This book explores nanomaterials used for removing various textile dyes from water. It compiles 8 chapters that discuss the materials and nano systems used in these processes. This reference is designed to provide answers to common questions for scholars, academicians and technologists about fundamentals of nanoscience
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