Li R, Zhang L, Wang P (2015) Rational design of nanomaterials for water treatment. Nanoscale 7
(41):17167–17194. https://doi.org/10.1039/C5NR04870B
Liao C-H, Kang S-F, Hsu Y-W (2003) Zero-valent iron reduction of nitrate in the presence of
ultraviolet light, organic matter and hydrogen peroxide. Water Res 37(17):4109–4118. https://
doi.org/10.1016/S0043-1354(03)00248-3
Lin SH, Lo CC (1997) Fenton process for treatment of desizing wastewater. Water Res 31
(8):2050–2056. https://doi.org/10.1016/S0043-1354(97)00024-9
Litter MI (2005) Introduction to photochemical advanced oxidation processes for water treatment.
In: Boule P, Bahnemann DW, Robertson PKJ (eds) Environmental photochemistry Part II, The
handbook of environmental chemistry, vol 2M. Springer, Berlin/Heidelberg, pp 325–366.
https://doi.org/10.1007/b138188
Litter MI, Slodowicz M (2017) An overview on heterogeneous Fenton and photoFenton reactions
using zerovalent iron materials. J Adv Oxid Technol 20(1):20160164. https://doi.org/10.1515/
jaots-2016-0164
Litter MI, Morgada ME, Bundschuh J (2010) Possible treatments for arsenic removal in Latin
American waters for human consumption. Environ Pollut 158(5):1105–1118. https://doi.org/10.
1016/j.envpol.2010.01.028
Litter MI, Cortina JL, Fiúza AMA, Futuro A, Tsakiroglou C (2014) In-situ technologies for
groundwater treatment: the case of arsenic. In: Bundschuh J, Holländer HM, Ma LQ (eds)
In-situ remediation of arsenic-contaminated sites. CRC Press, London, pp 1–34
Litter MI, Quici N, Meichtry M (eds) (2018a) Iron nanomaterials for water and soil treatment. Pan
Stanford Publishing Pte Ltd., Singapore
Litter MI, San Román E, Grela MA, Meichtry JM, Rodríguez HB (2018b) Sensitization of TiO 2 by
dyes: a way to extend the range of photocatalytic activity of TiO 2 to the visible region. In: Ghosh
S (ed) Visible light-active photocatalysis: nanostructured catalyst design, mechanisms, and
applications. Weinheim, Wiley-VCH Verlag. https://doi.org/10.1002/9783527808175.ch10
Liu X, Zhang T, Zhou Y, Fang L, Shao Y (2013) Degradation of atenolol by
UV/peroxymonosulfate: kinetics, effect of operational parameters and mechanism.
Chemosphere 93(11):2717–2724. https://doi.org/10.1016/j.chemosphere.2013.08.090
López Cisneros R, Gutarra Espinoza A, Litter MI (2002) Photodegradation of an azo dye of the
textile industry. Chemosphere 48(4):393–399. https://doi.org/10.1016/S0045-6535(02)00117-0
Lopez JL, García Einschlag FS, González MC, Capparelli AL, Oliveros E, Hashem TM, Braun AM
(2000) Hydroxyl radical initiated photodegradation of 4-chloro-3,5-dinitrobenzoic acid in
aqueous solution. J Photochem Photobiol A 137(2–3):177–184. https://doi.org/10.1016/
S1010-6030(00)00357-9
Lopez A, Bozzi A, Mascolo G, Kiwi J (2003) Kinetic investigation on UV and UV/H 2 O 2
degradations of pharmaceutical intermediates in aqueous solution. J Photochem Photobiol A
156(1–3):121–126. https://doi.org/10.1016/S1010-6030(02)00435-5
Ma Y-S (2012) Short review: current trends and future challenges in the application of sono-Fenton
oxidation for wastewater treatment. Sustain Environ Res 22(5):271–278
Ma H, Wang M, Yang R, Wang W, Zhao J, Shen Z, Yao S (2007) Radiation degradation of Congo
Red in aqueous solution. Chemosphere 68(6):1098–1104. https://doi.org/10.1016/j.
chemosphere.2007.01.067
Makogon O, Fliount R, Asmus K-D (1998) Formation and degradation of halogenated Organic
acids. Radiation versus photocatalytically induced processes. J Adv Oxid Technol 3(1):11–21.
https://doi.org/10.1515/jaots-1998-0104
Mantzavinos D, Hellenbrand R, Livingston AG, Metcalfe IS (1996) Reaction mechanisms and
kinetics of chemical pretreatment of bioresistant organic molecules by wet air oxidation. Paper
presented at the 1st international conference on Oxidation Technologies for Water and Wastewater Treatment, Goslar, Germany, 12–15 May 1996
Mark G, Schuchmann MN, Schuchmann H-P, von Sonntag C (1990) The photolysis of potassium
peroxodisulphate in aqueous solution in the presence of tert-butanol: a simple actinometer for
254 nm radiation. J Photochem Photobiol A 55(2):157–168. https://doi.org/10.1016/1010-6030
(90)80028-V
7 Introduction to Oxidative Technologies for Water Treatment
169
(41):17167–17194. https://doi.org/10.1039/C5NR04870B
Liao C-H, Kang S-F, Hsu Y-W (2003) Zero-valent iron reduction of nitrate in the presence of
ultraviolet light, organic matter and hydrogen peroxide. Water Res 37(17):4109–4118. https://
doi.org/10.1016/S0043-1354(03)00248-3
Lin SH, Lo CC (1997) Fenton process for treatment of desizing wastewater. Water Res 31
(8):2050–2056. https://doi.org/10.1016/S0043-1354(97)00024-9
Litter MI (2005) Introduction to photochemical advanced oxidation processes for water treatment.
In: Boule P, Bahnemann DW, Robertson PKJ (eds) Environmental photochemistry Part II, The
handbook of environmental chemistry, vol 2M. Springer, Berlin/Heidelberg, pp 325–366.
https://doi.org/10.1007/b138188
Litter MI, Slodowicz M (2017) An overview on heterogeneous Fenton and photoFenton reactions
using zerovalent iron materials. J Adv Oxid Technol 20(1):20160164. https://doi.org/10.1515/
jaots-2016-0164
Litter MI, Morgada ME, Bundschuh J (2010) Possible treatments for arsenic removal in Latin
American waters for human consumption. Environ Pollut 158(5):1105–1118. https://doi.org/10.
1016/j.envpol.2010.01.028
Litter MI, Cortina JL, Fiúza AMA, Futuro A, Tsakiroglou C (2014) In-situ technologies for
groundwater treatment: the case of arsenic. In: Bundschuh J, Holländer HM, Ma LQ (eds)
In-situ remediation of arsenic-contaminated sites. CRC Press, London, pp 1–34
Litter MI, Quici N, Meichtry M (eds) (2018a) Iron nanomaterials for water and soil treatment. Pan
Stanford Publishing Pte Ltd., Singapore
Litter MI, San Román E, Grela MA, Meichtry JM, Rodríguez HB (2018b) Sensitization of TiO 2 by
dyes: a way to extend the range of photocatalytic activity of TiO 2 to the visible region. In: Ghosh
S (ed) Visible light-active photocatalysis: nanostructured catalyst design, mechanisms, and
applications. Weinheim, Wiley-VCH Verlag. https://doi.org/10.1002/9783527808175.ch10
Liu X, Zhang T, Zhou Y, Fang L, Shao Y (2013) Degradation of atenolol by
UV/peroxymonosulfate: kinetics, effect of operational parameters and mechanism.
Chemosphere 93(11):2717–2724. https://doi.org/10.1016/j.chemosphere.2013.08.090
López Cisneros R, Gutarra Espinoza A, Litter MI (2002) Photodegradation of an azo dye of the
textile industry. Chemosphere 48(4):393–399. https://doi.org/10.1016/S0045-6535(02)00117-0
Lopez JL, García Einschlag FS, González MC, Capparelli AL, Oliveros E, Hashem TM, Braun AM
(2000) Hydroxyl radical initiated photodegradation of 4-chloro-3,5-dinitrobenzoic acid in
aqueous solution. J Photochem Photobiol A 137(2–3):177–184. https://doi.org/10.1016/
S1010-6030(00)00357-9
Lopez A, Bozzi A, Mascolo G, Kiwi J (2003) Kinetic investigation on UV and UV/H 2 O 2
degradations of pharmaceutical intermediates in aqueous solution. J Photochem Photobiol A
156(1–3):121–126. https://doi.org/10.1016/S1010-6030(02)00435-5
Ma Y-S (2012) Short review: current trends and future challenges in the application of sono-Fenton
oxidation for wastewater treatment. Sustain Environ Res 22(5):271–278
Ma H, Wang M, Yang R, Wang W, Zhao J, Shen Z, Yao S (2007) Radiation degradation of Congo
Red in aqueous solution. Chemosphere 68(6):1098–1104. https://doi.org/10.1016/j.
chemosphere.2007.01.067
Makogon O, Fliount R, Asmus K-D (1998) Formation and degradation of halogenated Organic
acids. Radiation versus photocatalytically induced processes. J Adv Oxid Technol 3(1):11–21.
https://doi.org/10.1515/jaots-1998-0104
Mantzavinos D, Hellenbrand R, Livingston AG, Metcalfe IS (1996) Reaction mechanisms and
kinetics of chemical pretreatment of bioresistant organic molecules by wet air oxidation. Paper
presented at the 1st international conference on Oxidation Technologies for Water and Wastewater Treatment, Goslar, Germany, 12–15 May 1996
Mark G, Schuchmann MN, Schuchmann H-P, von Sonntag C (1990) The photolysis of potassium
peroxodisulphate in aqueous solution in the presence of tert-butanol: a simple actinometer for
254 nm radiation. J Photochem Photobiol A 55(2):157–168. https://doi.org/10.1016/1010-6030
(90)80028-V
7 Introduction to Oxidative Technologies for Water Treatment
169
