of gram-positive and gram-negative bacteria. J Nanopart Res 15(2):1432. https://doi.org/10.
1007/s11051-013-1432-9
Barrera-Dıaz C, Urena-Nunez F, Campos E, Palomar-Pardavé M, Romero-Romo M (2003) A
combined electrochemical-irradiation treatment of highly colored and polluted industrial wastewater. Radiat Phys Chem 67(5):657–663. https://doi.org/10.1016/S0969-806X(02)00497-8
Barrera-Díaz CE, Roa-Morales G, Hernández PB, Fernandez-Marchante CM, Rodrigo MA (2014)
Enhanced electrocoagulation: New approaches to improve the electrochemical process. Journal
of Electrochemical Science and Engineering 4(4):285–296
Basnet P, Larsen GK, Jadeja RP, Hung Y-C, Zhao Y (2013) α-Fe 2 O 3 nanocolumns and nanorods
fabricated by electron beam evaporation for visible light photocatalytic and antimicrobial
applications. ACS Appl Mater Interfaces 5(6):2085–2095. https://doi.org/10.1021/am303017c
Blume T, Neis U (2004) Improved wastewater disinfection by ultrasonic pre-treatment. Ultrason
Sonochem 11(5):333–336. https://doi.org/10.1016/S1350-4177(03)00156-1
Bosetti M, Massè A, Tobin E, Cannas M (2002) Silver coated materials for external fixation
devices: in vitro biocompatibility and genotoxicity. Biomaterials 23(3):887–892. https://doi.
org/10.1016/s0142-9612(01)00198-3
Cantarella M, Di Mauro A, Gulino A, Spitaleri L, Nicotra G, Privitera V, Impellizzeri G (2018)
Selective photodegradation of paracetamol by molecularly imprinted ZnO nanonuts. Applied
Catalysis B: Environmental 238:509–517
Carlson K, Elliott C, Walker S, Misra M, Mohanty S (2016) An effective, point-of-use water
disinfection device using immobilized black TiO 2 nanotubes as an electrocatalyst. J
Electrochem Soc 163(6):H395–H401. https://doi.org/10.1149/2.0651606jes
Castañeda-Juárez M, Martínez-Miranda V, Almazán-Sánchez PT, Linares-Hernández I, SantoyoTepole F, Vázquez-Mejía G (2019) Synthesis of TiO2 catalysts doped with Cu, Fe, and Fe/Cu
supported on clinoptilolite zeolite by an electrochemical-thermal method for the degradation of
diclofenac by heterogeneous photocatalysis. Journal of Photochemistry and Photobiology A:
Chemistry 380:111834
Chandran P, Kumari P, Khan SS (2014) Photocatalytic activation of CdS NPs under visible light for
environmental cleanup and disinfection. Sol Energy 105:542–547. https://doi.org/10.1016/j.
solener.2014.04.028
Chen Y et al (2011) Naturally occurring sphalerite as a novel cost-effective photocatalyst for
bacterial disinfection under visible light. Environ Sci Technol 45(13):5689–5695. https://doi.
org/10.1021/es200778p
Chen Y et al (2013) Comparative study of visible-light-driven photocatalytic inactivation of two
different wastewater bacteria by natural sphalerite. Chem Eng J 234:43–48. https://doi.org/10.
1016/j.cej.2013.08.106
Chen F et al (2016) Photo-reduction of bromate in drinking water by metallic Ag and reduced
graphene oxide (RGO) jointly modified BiVO 4 under visible light irradiation. Water Res
101:555–563. https://doi.org/10.1016/j.watres.2016.06.006
Chong MN, Jin B, Zhu H, Saint C (2010) Bacterial inactivation kinetics, regrowth and synergistic
competition in a photocatalytic disinfection system using anatase titanate nanofiber catalyst. J
Photochem Photobiol A Chem 214(1):1–9. https://doi.org/10.1016/j.jphotochem.2010.05.018
Chou WL, Yu DG, Yang MC (2005) The preparation and characterization of silver-loading
cellulose acetate hollow fiber membrane for water treatment. Polym Adv Technol 16
(8):600–607. https://doi.org/10.1002/pat.630
Christensen P, Curtis T, Egerton T, Kosa S, Tinlin J (2003) Photoelectrocatalytic and photocatalytic
disinfection of E. coli suspensions by titanium dioxide. Appl Catal B Environ 41(4):371–386.
https://doi.org/10.1016/S0926-3373(02)00172-8
Daida P (2005) Removal of arsenic from water by electrocoagulation using Al – Al, Fe – Fe
electrode pair systems and characterization of by-product. UMI Microform 1–68. https://doi.
org/10.1016/j.jhazmat.2005.11.108
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T. G. Ambaye et al.
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