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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58. Kosheleva, R.I., Mitropoulos, A.C., Kyzas, G.Z., Chapter 7- New trends in molecular imprinting techniques, in: Advanced Low-Cost Separation Techniques in Interface Science, vol. 30, G. Kyzas, A. Mitropoulos (Eds.), pp. 151–172, Elsevier, 2019.

59. Zaidi, S.A., Molecular imprinting polymers and their composites: a promising material for diverse applications. Biomater. Sci., 5, 388, 2017.

60. Costa Queiroz, M.E., Donizeti de Souza, I., Marchioni, C., Current advances and applications of in-tube solid-phase microextraction. TrAC Trends Anal. Chem., 111, 261, 2019.

61. Eisert, R., Pawliszyn, J., Automated In-Tube Solid-Phase Microextraction Coupled to High-Performance Liquid Chromatography. Anal. Chem., 69, 3140, 1997.

62. Lirio, S., Fu, C.-W., Lin, J.-Y., Hsu, M.-J., Huang, H.-Y., Solid-phase microextraction of phthalate esters in water sample using different activated carbon-polymer monoliths as adsorbents. Anal. Chim. Acta, 927, 55, 2016.

63. Baltussen, E., Sandra, P., David, F., Cramers, C., Stir bar sorptive extraction (SBSE), a novel extraction technique for aqueous samples: Theory and principles. J. Microcolumn Sep., 11, 737, 1999.

64. Soares da Silva Burato, J., Vargas Medina, D.A., de Toffoli, A.L., Vasconcelos Soares Maciel, E., Mauro Lanças, F., Recent advances and trends in miniaturized sample preparation techniques. J. Sep. Sci., 43, 202, 2020.

65. Prieto, A., Zuloaga, O., Usobiaga, A., Etxebarria, N., Fernández, L.A., Development of a stir bar sorptive extraction and thermal desorption–gas chromatography–mass spectrometry method for the simultaneous determination of several persistent organic pollutants in water samples. J. Chromatogr. A, 1174, 40, 2007.

66. Si, Q., Li, F., Gao, C., Wang, C., Wang, Z., Zhao, J., Detection of phthalate esters in seawater by stir bar sorptive extraction and gas chromatography–mass spectrometry. Mar. Pollut. Bull., 108, 163, 2016.

67. Socas-Rodríguez, B., Herrera-Herrera, A. V, Asensio-Ramos, M., Hernández-Borges, J., Dispersive solid-phase extraction. Anal. Sep. Sci., 1525, 2015.

68. Khezeli, T., Daneshfar, A., Development of dispersive micro-solid phase extraction based on micro and nano sorbents. TrAC Trends Anal. Chem. , 89, 99, 2017.

69. Cheng, L., Pan, S., Ding, C., He, J., Wang, C., Dispersive solid-phase microextraction with graphene oxide based molecularly imprinted polymers for determining bis(2-ethylhexyl) phthalate in environmental water. J. Chromatogr. A, 1511, 85, 2017.

70. González-Curbelo, M.Á., Asensio-Ramos, M., Herrera-Herrera, A. V, Hernández-Borges, J., Pesticide residue analysis in cereal-based baby foods using multi-walled carbon nanotubes dispersive solid-phase extraction. Anal. Bioanal. Chem., 404, 183, 2012.

71. González-Curbelo, M.Á., Herrera-Herrera, A. V, Hernández-Borges, J., Rodríguez-Delgado, M.Á., Analysis of pesticides residues in environmental water samples using multiwalled carbon nanotubes dispersive solid-phase extraction. J. Sep. Sci., 36, 556, 2013.

72. Wu, X., Hong, H., Liu, X., Guan, W., Meng, L., Ye, Y., Ma, Y., Graphene-dispersive solid-phase extraction of phthalate acid esters from environmental water. Sci. Total Environ., 444, 224, 2013.

73. Özer, E.T., Osman, B., Yazici, T., Dummy molecularly imprinted microbeads as solid-phase extraction material for selective determination of phthalate esters in water. J. Chromatogr. A, 1500, 53, 2017.

74. Chen, X., Xin, L., Xu, Y., Liu, J., Li, Z., Wang, Y., Zhao, J., (2019) Polymer phase transition characteristics coupled with GC-MS for the determination of phthalate esters. J. Sep. Sci., 42, 3095, 2019.

75. Chen, X., Guo, Z., Wang, Y., Liu, Y., Xu, Y., Liu, J., Li, Z., Zhao, J., Temperature sensitive polymer-dispersive liquid–liquid microextraction with gas chromatography–mass spectrometry for the determination of phenols. J. Chromatogr. A, 1592, 183, 2019.

76. Jiao, Y., Fu, S., Ding, L., Gong, Q., Zhu, S., Wang, L., Li, H., Determination of trace leaching phthalate esters in water by magnetic solid phase extraction based on magnetic multi-walled carbon nanotubes followed by GC-MS/MS. Anal. Methods, 4, 2729, 2012.

77. Luo, Y.-B., Yu, Q.-W., Yuan, B.-F., Feng, Y.-Q., Fast microextraction of phthalate acid esters from beverage, environmental water and perfume samples by magnetic multi-walled carbon nanotubes. Talanta , 90, 123, 2012.

78. Wu, Q., Liu, M., Ma, X., Wang, W., Wang, C., Zang, X., Wang, Z., Extraction of phthalate esters from water and beverages using a graphene-based magnetic nanocomposite prior to their determination by HPLC. Microchim. Acta, 177, 23, 2012.

79. Ye, Q., Liu, L., Chen, Z., and Hong, L., Analysis of phthalate acid esters in environmental water by magnetic graphene solid phase extraction coupled with gas chromatography–mass spectrometry. J. Chromatogr. A, 1329, 24, 2014.

80. Jiménez-Skrzypek, G., González-Sálamo, J., Varela-Martínez, D.A., González-Curbelo, M.Á., Hernández-Borges, J., Analysis of phthalic acid esters in sea water and sea sand using polymer-coated magnetic nanoparticles as extraction sorbent. J. Chromatogr. A, 1611, 460620, 2019.

81. Zhao, H., Huang, M., Wu, J., Wang, L., He, H., Preparation of Fe 3O 4@PPy magnetic nanoparticles as solid-phase extraction sorbents for preconcentration and separation of phthalic acid esters in water by gas chromatography–mass spectrometry. J. Chromatogr. B, 1011, 33, 2016.

82. Liu, G., Su, P., Zhou, L., Yang, Y., Microwave-assisted preparation of poly(ionic liquids)-modified polystyrene magnetic nanospheres for phthalate esters extraction from beverages. J. Sep. Sci., 40, 2603, 2017.

83. Zhou, S., Song, N., Lv, X., Jia, Q., Preparation of carboxylatocalix[4]arene functionalized magnetic polyionic liquid hybrid material for the pre-concentration of phthalate esters. J. Chromatogr. A, 1565, 19, 2018.

84. Rocío-Bautista, P., González-Hernández, P., Pino, V., Pasán, J., Afonso, A.M., Metal-organic frameworks as novel sorbents in dispersive-based microextraction approaches. TrAC Trends Anal. Chem., 90, 114, 2017.

85. Liu, X., Sun, Z., Chen, G., Zhang, W., Cai, Y., Kong, R., Wang, X., Suo, Y., You, J., Determination of phthalate esters in environmental water by magnetic Zeolitic Imidazolate Framework-8 solid-phase extraction coupled with high-performance liquid chromatography. J. Chromatogr. A, 1409, 46, 2015.

86. Dargahi, R., Ebrahimzadeh, H., Asgharinezhad, A.A., Hashemzadeh, A., Amini, M.M., Dispersive magnetic solid-phase extraction of phthalate esters from water samples and human plasma based on a nanosorbent composed of MIL-101(Cr) metal–organic framework and magnetite nanoparticles before their determination by GC–MS. J. Sep. Sci., 41, 948, 2018.

87. Wang, Y., Tong, Y., Xu, X., Zhang, L., Developed magnetic multiporous 3D N-Co@C/HCF as efficient sorbent for the extraction of five trace phthalate esters. Anal. Chim. Acta, 1054, 176, 2019.

88. Li, H., Cao, Z., Cao, X., Jiang, Z., Abd El-Aty, A.M., Qi, Y., Shao, H., Jin, F., Zheng, L., Wang, J., Magnetic solid-phase extraction using a mixture of two types of nanoparticles followed by gas chromatography–mass spectrometry for the determination of six phthalic acid esters in various water samples. RSC Adv., 8, 39641, 2018.

89. Abdel-Rehim, M., Microextraction by packed sorbent (MEPS): A tutorial. Anal. Chim. Acta, 701, 119, 2011.

90. Amiri, A., Chahkandi, M., Targhoo, A., Synthesis of nano-hydroxyapatite sorbent for microextraction in packed syringe of phthalate esters in water samples. Anal. Chim. Acta, 950, 64, 2017.

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