Schaap AP, Thayer AL, Blossey EC, Neckers DC (1975) Polymer-based sensitizers for photooxidations. II. J Am Chem Soc 97(13):3741–3745. https://doi.org/10.1021/ja00846a030
Scherer MM, Balko BA, Tratnyek PG (1999) The role of oxides in reduction reactions at the metalwater interface. In: Mineral-water interfacial reactions, ACS symposium series, vol 715.
American Chemical Society, Washington, DC, pp 301–322. https://doi.org/10.1021/bk-19980715.ch015
Scott JP, Ollis DF (1995) Integration of chemical and biological oxidation processes for water
treatment: review and recommendations. Environ Prog Sustain Energy 14(2):88–103. https://
doi.org/10.1002/ep.670140212
Sedlak DL, Andren AW (1991) Oxidation of chlorobenzene with Fenton’s reagent. Environ Sci
Technol 25(4):777–782. https://doi.org/10.1021/es00016a024
Senzaki T (1991) Removal of chlorinated organic compounds from wastewater by reduction
process: III treatment of trichloroethylene with iron powder. Kogyo Yosui 391:29–35
Senzaki T, Kumagai Y (1988) Removal of chlorinated organic compounds from wastewater by
reduction process: treatment of 1, 1, 2, 2-tetrachloroethane with iron powder. Kogyo Yosui
357:2–7
Sharma VK (2002) Potassium ferrate (VI): an environmentally friendly oxidant. Adv Environ Res 6
(2):143–156. https://doi.org/10.1016/S1093-0191(01)00119-8
Sharma VK, Rivera W, Joshi VN, Millero FJ, O’Connor D (1999) Ferrate(VI) oxidation of thiourea.
Environ Sci Technol 33(15):2645–2650. https://doi.org/10.1021/es981083a
Sharma VK, Graham NJD, Li X-Z, Yuan B-L (2010) Ferrate(VI) enhanced photocatalytic oxidation
of pollutants in aqueous TiO 2 suspensions. Environ Sci Pollut Res 17(2):453–461. https://doi.
org/10.1007/s11356-009-0170-0
Sharma VK, Zboril R, Varma RS (2015) Ferrates: Greener oxidants with multimodal action in water
treatment technologies. Acc Chem Res 48(2):182–191. https://doi.org/10.1021/ar5004219
Sichel C, Garcia C, Andre K (2011) Feasibility studies: UV/chlorine advanced oxidation treatment
for the removal of emerging contaminants. Water Res 45(19):6371–6380. https://doi.org/10.
1016/j.watres.2011.09.025
Stefan MI (ed) (2018a) Advanced oxidation processes for water treatment: fundamentals and
applications. IWA Publishing, London
Stefan MI (2018b) UV/Hydrogen peroxide process. In: Stefan MI (ed) Advanced oxidation
processes for water treatment: fundamentals and applications. IWA Publishing, London, pp
7–122
Stratton GR, Bellona CL, Dai F, Holsen TM, Mededovic Thagard S (2015) Plasma-based water
treatment: conception and application of a new general principle for reactor design. Chem Eng J
273:543–550. https://doi.org/10.1016/j.cej.2015.03.059
Su C, Puls RW (2001) Arsenate and arsenite removal by zerovalent iron: kinetics, redox transformation, and implications for in situ groundwater remediation. Environ Sci Technol 35
(7):1487–1492. https://doi.org/10.1021/es001607i
Tang WZ, Chen RZ (1996) Decolorization kinetics and mechanisms of commercial dyes by H 2 O 2 /
iron powder system. Chemosphere 32(5):947–958. https://doi.org/10.1016/0045-6535(95)
00358-4
Tang WZ, Tassos S (1997) Oxidation kinetics and mechanisms of trihalomethanes by Fenton’s
reagent. Water Res 31(5):1117–1125. https://doi.org/10.1016/S0043-1354(96)00348-X
Teel AL, Warberg CR, Atkinson DA, Watts RJ (2001) Comparison of mineral and soluble iron
Fenton’s catalysts for the treatment of trichloroethylene. Water Res 35(4):977–984. https://doi.
org/10.1016/S0043-1354(00)00332-8
Tijani JO, Fatoba OO, Madzivire G, Petrik LF (2014) A review of combined advanced oxidation
technologies for the removal of organic pollutants from water. Water Air Soil Pollut 225:2102.
https://doi.org/10.1007/s11270-014-2102-y
Tungler A, Szabados E, Hosseini AM (2015) Wet air oxidation of aqueous wastes. In: Samer M
(ed) Wastewater treatment engineering. IntechOpen, Rijeka, pp 153–178. https://doi.org/10.
5772/60935
7 Introduction to Oxidative Technologies for Water Treatment
173
Scherer MM, Balko BA, Tratnyek PG (1999) The role of oxides in reduction reactions at the metalwater interface. In: Mineral-water interfacial reactions, ACS symposium series, vol 715.
American Chemical Society, Washington, DC, pp 301–322. https://doi.org/10.1021/bk-19980715.ch015
Scott JP, Ollis DF (1995) Integration of chemical and biological oxidation processes for water
treatment: review and recommendations. Environ Prog Sustain Energy 14(2):88–103. https://
doi.org/10.1002/ep.670140212
Sedlak DL, Andren AW (1991) Oxidation of chlorobenzene with Fenton’s reagent. Environ Sci
Technol 25(4):777–782. https://doi.org/10.1021/es00016a024
Senzaki T (1991) Removal of chlorinated organic compounds from wastewater by reduction
process: III treatment of trichloroethylene with iron powder. Kogyo Yosui 391:29–35
Senzaki T, Kumagai Y (1988) Removal of chlorinated organic compounds from wastewater by
reduction process: treatment of 1, 1, 2, 2-tetrachloroethane with iron powder. Kogyo Yosui
357:2–7
Sharma VK (2002) Potassium ferrate (VI): an environmentally friendly oxidant. Adv Environ Res 6
(2):143–156. https://doi.org/10.1016/S1093-0191(01)00119-8
Sharma VK, Rivera W, Joshi VN, Millero FJ, O’Connor D (1999) Ferrate(VI) oxidation of thiourea.
Environ Sci Technol 33(15):2645–2650. https://doi.org/10.1021/es981083a
Sharma VK, Graham NJD, Li X-Z, Yuan B-L (2010) Ferrate(VI) enhanced photocatalytic oxidation
of pollutants in aqueous TiO 2 suspensions. Environ Sci Pollut Res 17(2):453–461. https://doi.
org/10.1007/s11356-009-0170-0
Sharma VK, Zboril R, Varma RS (2015) Ferrates: Greener oxidants with multimodal action in water
treatment technologies. Acc Chem Res 48(2):182–191. https://doi.org/10.1021/ar5004219
Sichel C, Garcia C, Andre K (2011) Feasibility studies: UV/chlorine advanced oxidation treatment
for the removal of emerging contaminants. Water Res 45(19):6371–6380. https://doi.org/10.
1016/j.watres.2011.09.025
Stefan MI (ed) (2018a) Advanced oxidation processes for water treatment: fundamentals and
applications. IWA Publishing, London
Stefan MI (2018b) UV/Hydrogen peroxide process. In: Stefan MI (ed) Advanced oxidation
processes for water treatment: fundamentals and applications. IWA Publishing, London, pp
7–122
Stratton GR, Bellona CL, Dai F, Holsen TM, Mededovic Thagard S (2015) Plasma-based water
treatment: conception and application of a new general principle for reactor design. Chem Eng J
273:543–550. https://doi.org/10.1016/j.cej.2015.03.059
Su C, Puls RW (2001) Arsenate and arsenite removal by zerovalent iron: kinetics, redox transformation, and implications for in situ groundwater remediation. Environ Sci Technol 35
(7):1487–1492. https://doi.org/10.1021/es001607i
Tang WZ, Chen RZ (1996) Decolorization kinetics and mechanisms of commercial dyes by H 2 O 2 /
iron powder system. Chemosphere 32(5):947–958. https://doi.org/10.1016/0045-6535(95)
00358-4
Tang WZ, Tassos S (1997) Oxidation kinetics and mechanisms of trihalomethanes by Fenton’s
reagent. Water Res 31(5):1117–1125. https://doi.org/10.1016/S0043-1354(96)00348-X
Teel AL, Warberg CR, Atkinson DA, Watts RJ (2001) Comparison of mineral and soluble iron
Fenton’s catalysts for the treatment of trichloroethylene. Water Res 35(4):977–984. https://doi.
org/10.1016/S0043-1354(00)00332-8
Tijani JO, Fatoba OO, Madzivire G, Petrik LF (2014) A review of combined advanced oxidation
technologies for the removal of organic pollutants from water. Water Air Soil Pollut 225:2102.
https://doi.org/10.1007/s11270-014-2102-y
Tungler A, Szabados E, Hosseini AM (2015) Wet air oxidation of aqueous wastes. In: Samer M
(ed) Wastewater treatment engineering. IntechOpen, Rijeka, pp 153–178. https://doi.org/10.
5772/60935
7 Introduction to Oxidative Technologies for Water Treatment
173
