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nanoparticles—An integrated (nano-bio) approach. Environ Prog Sustain Energy 35
(3):706–714
Ahn JY, Kim C, Kim HS, Hwang KY, Hwang I (2016) Effects of oxidants on in situ treatment of a
DNAPL source by nanoscale zero-valent iron: a field study. Water Res 107:57–65
Akanyeti İ, Kraft A, Ferrari MC (2017) Hybrid polystyrene nanoparticle-ultrafiltration system for
hormone removal from water. J Water Process Eng 17:102–109
An Y, Li T, Jin Z, Dong M, Xia H, Wang X (2010) Effect of bimetallic and polymercoated Fe
nanoparticles on biological denitrification. Bioresour Technol 101(2010):9825–9828
Azubuike CC, Chikere CB, Okpokwasili GC (2016) Bioremediation techniques–classification
based on site of application: principles, advantages, limitations and prospects. World J
Microbiol Biotechnol 32(11):180
Barrocas B, Entradas TJ, Nunes CD, Monteiro OC (2017) Titanate nanofibers sensitized with ZnS
and Ag2S nanoparticles as novel photocatalysts for phenol removal. Appl Catal B Environ
218:709–720
Benelmekki M (2015) An introduction to nanoparticles and nanotechnology. In: Designing hybrid
nanoparticles. Morgan & Claypool Publishers, San Rafael
Bharagava RN, Saxena G, Chowdhary P (2017a) Constructed wetlands: an emerging
phytotechnology for degradation and detoxification of industrial wastewaters. In: Bharagava
RN (ed) Environmental pollutants and their bioremediation approaches, 1st edn. CRC Press,
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their bioremediation approaches, 1st edn. CRC Press, Taylor & Francis Group, Boca Raton, pp
1–22. https://doi.org/10.1201/9781315173351-2
Bhunia SK, Jana NR (2014) Reduced graphene oxide-silver nanoparticle composite as visible light
photocatalyst for degradation of colorless endocrine disruptors. ACS Appl Mater Interfaces 6
(22):20085–20092
Boente C, Sierra C, Martínez-Blanco D, Menéndez-Aguado JM, Gallego JR (2018) Nanoscale
zero-valent iron-assisted soil washing for the removal of potentially toxic elements. J Hazard
Mater 350:55–65
Bokare V, Murugesan K, Kim YM, Jeon JR, Kim EJ, Chang YS (2010) Degradation of triclosan by
an integrated nano-bio redox process. Bioresour Technol 101(16):6354–6360
Bokare V, Murugesan K, Kim JH, Kim EJ, Chang YS (2012) Integrated hybrid treatment for the
remediation of 2, 3, 7, 8-tetrachlorodibenzo-p-dioxin. Sci Total Environ 435:563–566
Chandra R, Saxena G, Kumar V (2015) Phytoremediation of environmental pollutants: an
eco-sustainable green technology to environmental management. In: Chandra R
(ed) Advances in biodegradation and bioremediation of industrial waste, 1st edn. CRC Press,
Taylor & Francis Group, Boca Raton, pp 1–30. https://doi.org/10.1201/b18218-2
Chidambaram D, Hennebel T, Taghavi S, Mast J, Boon N, Verstraete W, van der Lelie D, Fitts JP
(2010) Concomitant microbial generation of palladium nanoparticles and hydrogen to immobilize chromate. Environ Sci Technol 44(19):7635–7640
Contreras AR, Casals E, Puntes V, Komilis D, Sánchez A, Font X (2015) Use of cerium oxide
(CeO2) nanoparticles for the adsorption of dissolved cadmium (II), lead (II) and chromium
(VI) at two different pHs in single and multi-component systems. Global NEST J 17(3):536–543
Czech B, Rubinowska K (2013) TiO 2-assisted photocatalytic degradation of diclofenac, metoprolol, estrone and chloramphenicol as endocrine disruptors in water. Adsorption 19(2–4):619–630
Diao MH, Yao MS (2009) Use of zero-valent iron nanoparticles in inactivating microbes. Water
Res 43:5243–5251
178
R. Singh et al.
Adikesavan S, Nilanjana D (2016) Degradation of cefdinir by Candida Sp. SMN04 and MgO
nanoparticles—An integrated (nano-bio) approach. Environ Prog Sustain Energy 35
(3):706–714
Ahn JY, Kim C, Kim HS, Hwang KY, Hwang I (2016) Effects of oxidants on in situ treatment of a
DNAPL source by nanoscale zero-valent iron: a field study. Water Res 107:57–65
Akanyeti İ, Kraft A, Ferrari MC (2017) Hybrid polystyrene nanoparticle-ultrafiltration system for
hormone removal from water. J Water Process Eng 17:102–109
An Y, Li T, Jin Z, Dong M, Xia H, Wang X (2010) Effect of bimetallic and polymercoated Fe
nanoparticles on biological denitrification. Bioresour Technol 101(2010):9825–9828
Azubuike CC, Chikere CB, Okpokwasili GC (2016) Bioremediation techniques–classification
based on site of application: principles, advantages, limitations and prospects. World J
Microbiol Biotechnol 32(11):180
Barrocas B, Entradas TJ, Nunes CD, Monteiro OC (2017) Titanate nanofibers sensitized with ZnS
and Ag2S nanoparticles as novel photocatalysts for phenol removal. Appl Catal B Environ
218:709–720
Benelmekki M (2015) An introduction to nanoparticles and nanotechnology. In: Designing hybrid
nanoparticles. Morgan & Claypool Publishers, San Rafael
Bharagava RN, Saxena G, Chowdhary P (2017a) Constructed wetlands: an emerging
phytotechnology for degradation and detoxification of industrial wastewaters. In: Bharagava
RN (ed) Environmental pollutants and their bioremediation approaches, 1st edn. CRC Press,
Taylor & Francis Group, Boca Raton, pp 397–426. https://doi.org/10.1201/9781315173351-15
Bharagava RN, Chowdhary P, Saxena G (2017b) Bioremediation: an ecosustainable green technology: its applications and limitations. In: Bharagava RN (ed) Environmental pollutants and
their bioremediation approaches, 1st edn. CRC Press, Taylor & Francis Group, Boca Raton, pp
1–22. https://doi.org/10.1201/9781315173351-2
Bhunia SK, Jana NR (2014) Reduced graphene oxide-silver nanoparticle composite as visible light
photocatalyst for degradation of colorless endocrine disruptors. ACS Appl Mater Interfaces 6
(22):20085–20092
Boente C, Sierra C, Martínez-Blanco D, Menéndez-Aguado JM, Gallego JR (2018) Nanoscale
zero-valent iron-assisted soil washing for the removal of potentially toxic elements. J Hazard
Mater 350:55–65
Bokare V, Murugesan K, Kim YM, Jeon JR, Kim EJ, Chang YS (2010) Degradation of triclosan by
an integrated nano-bio redox process. Bioresour Technol 101(16):6354–6360
Bokare V, Murugesan K, Kim JH, Kim EJ, Chang YS (2012) Integrated hybrid treatment for the
remediation of 2, 3, 7, 8-tetrachlorodibenzo-p-dioxin. Sci Total Environ 435:563–566
Chandra R, Saxena G, Kumar V (2015) Phytoremediation of environmental pollutants: an
eco-sustainable green technology to environmental management. In: Chandra R
(ed) Advances in biodegradation and bioremediation of industrial waste, 1st edn. CRC Press,
Taylor & Francis Group, Boca Raton, pp 1–30. https://doi.org/10.1201/b18218-2
Chidambaram D, Hennebel T, Taghavi S, Mast J, Boon N, Verstraete W, van der Lelie D, Fitts JP
(2010) Concomitant microbial generation of palladium nanoparticles and hydrogen to immobilize chromate. Environ Sci Technol 44(19):7635–7640
Contreras AR, Casals E, Puntes V, Komilis D, Sánchez A, Font X (2015) Use of cerium oxide
(CeO2) nanoparticles for the adsorption of dissolved cadmium (II), lead (II) and chromium
(VI) at two different pHs in single and multi-component systems. Global NEST J 17(3):536–543
Czech B, Rubinowska K (2013) TiO 2-assisted photocatalytic degradation of diclofenac, metoprolol, estrone and chloramphenicol as endocrine disruptors in water. Adsorption 19(2–4):619–630
Diao MH, Yao MS (2009) Use of zero-valent iron nanoparticles in inactivating microbes. Water
Res 43:5243–5251
178
R. Singh et al.
