El-Dessouky H, Ettouney H (2002) Teaching desalination—a multidiscipline engineering science.
Heat Transfer Eng 23:1–3
Eshelby K (2007) Dying for a drink. Br Med J 334:610–612
Forzani ES, Li X, Zhang P, Tao N, Zhang R, Amlani I, Tsui R, Nagahara LA (2006) Tuning the
chemical selectivity of SWNT-Fets for detection of heavy-metal ions. Small 2:1283–1291
Furukawa H, Cordova KE, O'Keeffe M, Yaghi OM (2013) The chemistry and applications of metalorganic frameworks. Science 341:1230–1234
Gao X, Xing G, Yang Y, Shi X, Liu R, Chu W, Jing L, Zhao F, Ye C, Yuan H, Fang X, Zhao Y
(2008) Detection of trace Hg
2+ via induced circular dichroism of DNA wrapped around singlewalled carbon nanotubes. J Am Chem Soc 130:9190–9191
Gleick PH, Pacific Institute for Studies in Development, Environment and Security,ÁStockholm
Environment Institute (1993) Water in crisis: a guide to the world’s fresh water resources.
Oxford University Press, New York
Goh MS, Pumera M (2011) Graphene-based electrochemical sensor for detection of 2,4,6trinitrotoluene (TNT) in seawater: the comparison of single, few-, and multilayer graphene
nanoribbons and graphite microparticles. Anal Bioanal Chem 399:127–131
Guo S, Dong S (2011) Graphene and its derivative-based sensing materials for analytical devices. J
Mater Chem 21(46):18503–18516
Hang Y, Qin Y, Shen J (2003) Separation and microcolumn preconcentration of traces of rare earth
elements on nanoscale TiO 2 and their determination in geological samples by ICP-AES. J Sep
Sci 26:957–960
He S, Li D, Zhu C, Song S, Wang L, Long Y, Fan C (2008) A graphene-based fluorescent
nanoprobe for silver(I) ions detection by using graphene oxide and a silver-specific oligonucleotide. Chem Commun 46:4885–4887
He S, Song B, Li D, Zhu C, Qi W, Wen Y, Wang L, Song S, Fang H, Fan C (2010) A graphene
nanoprobe for rapid, sensitive, and multicolor fluorescent DNA analysis. Adv Funct Mater
20:453–459
Huang YF, Wang YF, Yan XP (2010) Amine-functionalized magnetic nanoparticles for rapid
capture and removal of bacterial pathogens. Environ Sci Technol 44:7908–7913
Hutton G, Haller L, Bartram J (2007) Economic and health effects of increasing coverage of low
cost household drinking water supply and sanitation interventions. World Health Organization,
Geneva
Jardim WF, Moraes SG, Takiyama MMK (1997) Photocatalytic degradation of aromatic
chlorinated compounds using TiO 2 : toxicity of intermediates. Water Res 31:1728–1732
Jiang H, Xu QL (2011) A microporous six-fold interpenetrated hydrogen-bonded organic framework for highly selective separation of C 2 H 4 /C 2 H 6 . Chem Commun 47:3351–3370
Johnson DM, Hokanson DR, Zhang Q, Czupinski KD, Tang J (2008) Feasibility of water purification technology in rural areas of developing countries. J Environ Manage 88(3):416–427
Kaur A (2016) Applications of organo-silica nanocomposites for SPNE of hg(II). Appl Nanosci
6:183–190
Kaur A, Gupta U (2008) A preconcentration procedure using 1-(2-pyridylazo)-2-naphthol anchored
to silica nanoparticle for the analysis of cadmium in different samples. E-J Chem 5:930–939
Kaur A, Gupta U (2009a) A review on applications of nanoparticles for the preconcentration of
environmental pollutants. J Mater Chem A 19:8279–8289
Kaur A, Gupta U (2009b) Application of 1-(2-Pyridylazo)-2-naphthol anchored SiO 2 nanoparticles
for the preconcentration of trace Pb
2+ from different water and food samples. Chin J Chem
27:1833–1838
Kaur A, Gupta U (2009c) Preconcentration of nickel using chemically modified silica nanoparticles.
Eurasian J Anal Chem 4:175–183
Kaur A, Gupta U (2009d) Preconcentration of zinc and manganese using 1-(2-pyridylazo)-2naphthol anchored SiO 2 nanoparticles. Eurasian J Anal Chem 4:234–244
Kaur A, Gupta U (2009e) Sorption and preconcentration of lead on silica nanoparticles modified
with resacetophenone. E J Chem 6:633–638
4 Nanoscavengers for the Waste Water Remediation
85
Heat Transfer Eng 23:1–3
Eshelby K (2007) Dying for a drink. Br Med J 334:610–612
Forzani ES, Li X, Zhang P, Tao N, Zhang R, Amlani I, Tsui R, Nagahara LA (2006) Tuning the
chemical selectivity of SWNT-Fets for detection of heavy-metal ions. Small 2:1283–1291
Furukawa H, Cordova KE, O'Keeffe M, Yaghi OM (2013) The chemistry and applications of metalorganic frameworks. Science 341:1230–1234
Gao X, Xing G, Yang Y, Shi X, Liu R, Chu W, Jing L, Zhao F, Ye C, Yuan H, Fang X, Zhao Y
(2008) Detection of trace Hg
2+ via induced circular dichroism of DNA wrapped around singlewalled carbon nanotubes. J Am Chem Soc 130:9190–9191
Gleick PH, Pacific Institute for Studies in Development, Environment and Security,ÁStockholm
Environment Institute (1993) Water in crisis: a guide to the world’s fresh water resources.
Oxford University Press, New York
Goh MS, Pumera M (2011) Graphene-based electrochemical sensor for detection of 2,4,6trinitrotoluene (TNT) in seawater: the comparison of single, few-, and multilayer graphene
nanoribbons and graphite microparticles. Anal Bioanal Chem 399:127–131
Guo S, Dong S (2011) Graphene and its derivative-based sensing materials for analytical devices. J
Mater Chem 21(46):18503–18516
Hang Y, Qin Y, Shen J (2003) Separation and microcolumn preconcentration of traces of rare earth
elements on nanoscale TiO 2 and their determination in geological samples by ICP-AES. J Sep
Sci 26:957–960
He S, Li D, Zhu C, Song S, Wang L, Long Y, Fan C (2008) A graphene-based fluorescent
nanoprobe for silver(I) ions detection by using graphene oxide and a silver-specific oligonucleotide. Chem Commun 46:4885–4887
He S, Song B, Li D, Zhu C, Qi W, Wen Y, Wang L, Song S, Fang H, Fan C (2010) A graphene
nanoprobe for rapid, sensitive, and multicolor fluorescent DNA analysis. Adv Funct Mater
20:453–459
Huang YF, Wang YF, Yan XP (2010) Amine-functionalized magnetic nanoparticles for rapid
capture and removal of bacterial pathogens. Environ Sci Technol 44:7908–7913
Hutton G, Haller L, Bartram J (2007) Economic and health effects of increasing coverage of low
cost household drinking water supply and sanitation interventions. World Health Organization,
Geneva
Jardim WF, Moraes SG, Takiyama MMK (1997) Photocatalytic degradation of aromatic
chlorinated compounds using TiO 2 : toxicity of intermediates. Water Res 31:1728–1732
Jiang H, Xu QL (2011) A microporous six-fold interpenetrated hydrogen-bonded organic framework for highly selective separation of C 2 H 4 /C 2 H 6 . Chem Commun 47:3351–3370
Johnson DM, Hokanson DR, Zhang Q, Czupinski KD, Tang J (2008) Feasibility of water purification technology in rural areas of developing countries. J Environ Manage 88(3):416–427
Kaur A (2016) Applications of organo-silica nanocomposites for SPNE of hg(II). Appl Nanosci
6:183–190
Kaur A, Gupta U (2008) A preconcentration procedure using 1-(2-pyridylazo)-2-naphthol anchored
to silica nanoparticle for the analysis of cadmium in different samples. E-J Chem 5:930–939
Kaur A, Gupta U (2009a) A review on applications of nanoparticles for the preconcentration of
environmental pollutants. J Mater Chem A 19:8279–8289
Kaur A, Gupta U (2009b) Application of 1-(2-Pyridylazo)-2-naphthol anchored SiO 2 nanoparticles
for the preconcentration of trace Pb
2+ from different water and food samples. Chin J Chem
27:1833–1838
Kaur A, Gupta U (2009c) Preconcentration of nickel using chemically modified silica nanoparticles.
Eurasian J Anal Chem 4:175–183
Kaur A, Gupta U (2009d) Preconcentration of zinc and manganese using 1-(2-pyridylazo)-2naphthol anchored SiO 2 nanoparticles. Eurasian J Anal Chem 4:234–244
Kaur A, Gupta U (2009e) Sorption and preconcentration of lead on silica nanoparticles modified
with resacetophenone. E J Chem 6:633–638
4 Nanoscavengers for the Waste Water Remediation
85
