Applied Water Science

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Water is one of the most precious and basic needs of life for all living beings, and a precious national asset. Without it, the existence of life cannot be imagined. Availability of pure water is decreasing day by day, and water scarcity has become a major problem that is faced by our society for the past few years. Hence, it is essential to find and disseminate the key solutions for water quality and scarcity issues. The inaccessibility and poor water quality continue to pose a major threat to human health worldwide. Around billions of people lacking to access drinkable water. The water contains the pathogenic impurities; which are responsible for water-borne diseases. The concept of water quality mainly depends on the chemical, physical, biological, and radiological measurement standards to evaluate the water quality and determine the concentration of all components, then compare the results of this concentration with the purpose for which this water is used. Therefore, awareness and a firm grounding in water science are the primary needs of readers, professionals, and researchers working in this research area.
This book explores the basic concepts and applications of water science. It provides an in-depth look at water pollutants’ classification, water recycling, qualitative and quantitative analysis, and efficient wastewater treatment methodologies. It also provides occurrence, human health risk assessment, strategies for removal of radionuclides and pharmaceuticals in aquatic systems. The book chapters are written by leading researchers throughout the world. This book is an invaluable guide to students, professors, scientists and R&D industrial specialists working in the field of environmental science, geoscience, water science, physics and chemistry.

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23. Wang, X., Feng, J., Tian, Y., Li, C., Ji, X., Luo, C., Sun, M., Melamine-formaldehyde aerogel functionalized with polydopamine as in-tube solid-phase microextraction coating for the determination of phthalate esters. Talanta , 199, 317, 2019.

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29. González-Sálamo, J., Socas-Rodríguez, B., Hernández-Borges, J. Analytical methods for the determination of phthalates in food. Curr. Opin. Food Sci., 22, 122, 2018.

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34. Sajid, M., Płotka-Wasylka, J., Combined extraction and microextraction techniques: Recent trends and future perspectives. TrAC Trends Anal. Chem., 103, 74, 2018.

35. González-Sálamo, J., Socas-Rodríguez, B., Hernández-Borges, J., Rodríguez-Delgado, M.Á., Nanomaterials as sorbents for food sample analysis. TrAC Trends Anal. Chem., 85, 203, 2016.

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37. González-Sálamo, J., Varela-Martínez, D.A., Cairós, C., González-Curbelo, M.Á., Hernández-Borges, J., Nanomaterials have come to stay: An overview of their use as sorbents in sample preparation. LG-GC North Am. , 37, 22, 2019.

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39. Banitaba, M.H., Davarani, S.S.H., Pourahadi, A., Solid-phase microextraction of phthalate esters from aqueous media by electrophoretically deposited TiO 2nanoparticles on a stainless steel fiber. J. Chromatogr. A, 1283, 1, 2013.

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42. Behzadi, M., Noroozian, E., Mirzaei, M., Electropolymerization of carbon nanotubes/poly-ortho-aminophenol nanocomposite on a stainless steel fiber for the solid-phase microextraction of phthalate esters. RSC Adv., 4, 50426, 2014.

43. Zhang, M., Huang, J., Zeng, J., Zhang, C., Silicon dioxide–poly(dimethylsiloxane) with a bilayer structure, incorporating multi-walled carbon nanotubes, supported on stainless steel wire as a solid-phase microextraction fiber for the determination of trace phthalate esters in drinking water sample. RSC Adv., 4, 12313, 2014.

44. Eskandarpour, N., Sereshti, H., Electrospun polycaprolactam-manganese oxide fiber for headspace-solid phase microextraction of phthalate esters in water samples. Chemosphere, 191, 36, 2018.

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48. Herrera-Herrera, A., Asensio-Ramos, M., González Curbelo, M.Á., Hernández-Borges, J., Carbon nanotubes applications in solid-phase extraction, in: Carbon Nanotubes: Synthesis, Properties and Applications , A.K. Mishra (Ed.), pp. 1-42, Nova Science Publishers, 2013.

49. González-Curbelo, M.Á., Rodríguez-Delgado, M.Á., Hernández-Borges, J., Nuevas aportaciones en el tratamiento de muestra para el análisis de plaguici-das, Servicio de Publicaciones de la Universidad de La Laguna, 2015.

50. González-Sálamo, J., Herrera-Herrera, A. V, Fanali, C., Hernández-Borges, J., Magnetic nanoparticles for solid-phase extraction. LC GC Eur., 29, 180, 2016.

51. Ríos, Á., Zougagh, M., Recent advances in magnetic nanomaterials for improving analytical processes. TrAC Trends Anal. Chem., 84, 72, 2016.

52. Tashakkori, P., Erdem, P., Merdivan, M., Bozkurt, S.S., Determination of phthalate esters in water and coffee by solid-phase microextraction using vinyl terminated imidazolium based ionic liquid grafted on graphene oxide coatings. Chemistry Select, 4, 2307, 2019.

53. Socas-Rodríguez, B., González-Sálamo, J., Hernández-Borges, J., Chapter 2Carbon Nanomaterials in Sample Preparation, in: Carbon-based Nanomaterials in Analytical Chemistry, C.D. García, A.G. Crevillén, A. Escarpa (Eds.), pp. 37–68, The Royal Society of Chemistry, 2019.

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55. Singh, S.K., Savoy, A.W., Ionic liquids synthesis and applications: An overview. J. Mol. Liq., 297, 112038, 2020.

56. Anderson, J.L., Ding, J., Welton, T., Armstrong, D.W., Characterizing ionic liquids on the basis of multiple solvation interactions. J. Am. Chem. Soc., 124, 14247, 2002.

57. Włoch, M., Datta, J., Chapter Two - Synthesis and polymerisation techniques of molecularly imprinted polymers, in: MIP Synthesis, Characteristics and Analytical Application, vol. 86, M. Marc (Ed.), pp. 17–40, Elsevier, 2019.

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