Giovanetti R, Rommozzi E, Zannotti M, D’Amato CA (2017) Recent advances in graphene based
TiO 2 nanocomposites (GTiO 2 Ns) for photocatalytic degradation of synthetic dyes. Catalysts 7:305
Grandcolas M, Ye J, Miyazawa K (2014) Titania nanotubes and fullerenes C60assemblies and their
photocatalytic activity under visible light. Ceram Int 40:1297–1302
Grindi IM, Frizzo CP, Bender CR, Tier AZ, Martins MAP, Villetti MA, Machado G, Rodriguez LC,
Rodrigues DC (2014) Preparation of TiO 2 nanoparticles coated with ionic liquids: a supramolecular approach. ACS Appl Mater Interfaces 6:11536–11543
Gunti S, Kumar A, Ram MK (2017) Nanostructured photocatalysis in the visible spectrum for the
decontamination of air and water. Int Mater Rev 4:257–282
Gupta SM, Tripathi M (2011) A review of TiO 2 nanoparticles. Chin Sci Bull 56:1639–1657
Hapeshi E, Achilleos A, Vasquez MI, Michael C, Xekoukoulotakis NP, Mantzavinos D, Kassinos
D (2010) Drugs degrading photocatalytically: kinetics and mechanisms of loxacin and at enolol
removal on titania suspensions. Water Res 44:1737–1746
Harish KN, Bhojya Naik HS, Prashanth Kumar PN, Viswanath R (2012) Synthesis, enhanced
optical and photocatalytic study of Cd-Zn ferrites under sunlight. Cat Sci Technol 2:1033–1039
He X, Mezyk SP, Michael I, Fatta-Kassinos D, Dionysiou DD (2014) Degradation kinetics and
mechanism of b-lactam antibiotics by the activation of H 2 O 2 and Na 2 S 2 O 8 under UV-254 nm
irradiation. J Hazard Mater 279:375–383
He Y, Sutton NB, Rijnaarts HHM, Langenhoff AAM (2016) Corrigendum to degradation of
pharmaceuticals in wastewater using immobilized TiO 2 photocatalysis under simulated solar
irradiation. Appl Catal B Environ 182:283
Helaili N, Mitran G, Popescu I, Bachari K, Marcu I-C, Boudjema A (2015) Photoelectrochemical
properties of AFe 2 O 4 (A ¼ Co, Cu, Zn) ferrospinels for water photoreduction. J Electroanal
Chem 742:47–53
Henderson MA (2011) A surface science perspective on TiO 2 photocatalysis. Surf Sci Rep
66:185–297
Hu L, Wei H, Zhang Y, Zhang S, Li B (2014) TiO 2 /carbon paper composite materials with
hierarchically porous structure for photocatalysis. Mater Lett 119:88–91
Huang W, Wang X, Xue Y, Yang Y, Ao X (2015) Hybrid nanostructures of mixed-phase TiO 2 for
Pnhanced Photoelectrochemical water splitting. RSC Adv 5:56098–56102
Hwang SH, Kim C, Jang J (2011) SnO 2 nanoparticles embedded TiO 2 nanofibres-Hightly efficient
photocatalyst for the degradation of rhodamine B. J Catal Commun 12:1037–1041
Hwang DW, Kim HG, Jang JS, Bae SW, Ji SM, Lee JS (2004) Photocatalytic decomposition of
water-methanol solution over metal-doped layered perovskites under visible light irradiation.
Catal Today 93:845–850
Hwang DW, Kim HG, Lee JS, Kim J, Le W, Oh SH (2005) Photocatalytic hydrogen production
from water over M-doped La 2 Ti 2 O 7 (M¼Cr, Fe) under visible light irradiation (λ > 420 nm). J
Phys Chem B 109:2093–2102
Ishii T, Kato H, Kudo A (2004) Photocatalytic activities of noble metal ion doped SrTiO 3 under
visible light irradiation. J Phys Chem B 108:8992–8995
Jabbari V, Hamadanian M, Karimzadeh S, Villagran D (2015) Enhanced charge carrier efficiency
and solar light-induced photocatalytic activity of TiO 2 nanoparticles through doping of silver
nanoclusters and C-N-S nonmetals. J Ind Eng Chem 35:132–139
Janczarek M, Kisch H, Hupka J (2007) Photoelectrochemical characterization of nitrogen-modified
TiO 2 . Physicochem Probl Mineral Process 41:159–166
Jia F, Yao Z, Jiang Z, Li C (2011) Preparation of carbon coated TiO 2 nanotubes film and its catalytic
application for H 2 generation. Catal Commun 12:497–501
Jiang GD, Lin ZF, Chen C, Zhu L, Chang Q, Wang N, Wei W, Tang H (2011) TiO 2 nanoparticles
assembled on graphene oxide nanosheets with high photocatalytic activity for removal of
polluants. Carbon 49:2693–2701
Jin M, Jeong HK, Yu WJ, Bae DJ, Kang BR, Lee YH (2009) Graphene oxide thin film field effect
transistors without reduction. J Phys D Appl Phys 42:135109
Joy J, Mathew J, George SC (2018) Nanomaterials for photoelectrochemical water splitting – review.
Int J Hydrog Energy 43(10):4804–4817. https://doi.org/10.1016/j.ijhydene.2018.01.099
254
A. Boudjemaa and S. Gómez-Ruiz
TiO 2 nanocomposites (GTiO 2 Ns) for photocatalytic degradation of synthetic dyes. Catalysts 7:305
Grandcolas M, Ye J, Miyazawa K (2014) Titania nanotubes and fullerenes C60assemblies and their
photocatalytic activity under visible light. Ceram Int 40:1297–1302
Grindi IM, Frizzo CP, Bender CR, Tier AZ, Martins MAP, Villetti MA, Machado G, Rodriguez LC,
Rodrigues DC (2014) Preparation of TiO 2 nanoparticles coated with ionic liquids: a supramolecular approach. ACS Appl Mater Interfaces 6:11536–11543
Gunti S, Kumar A, Ram MK (2017) Nanostructured photocatalysis in the visible spectrum for the
decontamination of air and water. Int Mater Rev 4:257–282
Gupta SM, Tripathi M (2011) A review of TiO 2 nanoparticles. Chin Sci Bull 56:1639–1657
Hapeshi E, Achilleos A, Vasquez MI, Michael C, Xekoukoulotakis NP, Mantzavinos D, Kassinos
D (2010) Drugs degrading photocatalytically: kinetics and mechanisms of loxacin and at enolol
removal on titania suspensions. Water Res 44:1737–1746
Harish KN, Bhojya Naik HS, Prashanth Kumar PN, Viswanath R (2012) Synthesis, enhanced
optical and photocatalytic study of Cd-Zn ferrites under sunlight. Cat Sci Technol 2:1033–1039
He X, Mezyk SP, Michael I, Fatta-Kassinos D, Dionysiou DD (2014) Degradation kinetics and
mechanism of b-lactam antibiotics by the activation of H 2 O 2 and Na 2 S 2 O 8 under UV-254 nm
irradiation. J Hazard Mater 279:375–383
He Y, Sutton NB, Rijnaarts HHM, Langenhoff AAM (2016) Corrigendum to degradation of
pharmaceuticals in wastewater using immobilized TiO 2 photocatalysis under simulated solar
irradiation. Appl Catal B Environ 182:283
Helaili N, Mitran G, Popescu I, Bachari K, Marcu I-C, Boudjema A (2015) Photoelectrochemical
properties of AFe 2 O 4 (A ¼ Co, Cu, Zn) ferrospinels for water photoreduction. J Electroanal
Chem 742:47–53
Henderson MA (2011) A surface science perspective on TiO 2 photocatalysis. Surf Sci Rep
66:185–297
Hu L, Wei H, Zhang Y, Zhang S, Li B (2014) TiO 2 /carbon paper composite materials with
hierarchically porous structure for photocatalysis. Mater Lett 119:88–91
Huang W, Wang X, Xue Y, Yang Y, Ao X (2015) Hybrid nanostructures of mixed-phase TiO 2 for
Pnhanced Photoelectrochemical water splitting. RSC Adv 5:56098–56102
Hwang SH, Kim C, Jang J (2011) SnO 2 nanoparticles embedded TiO 2 nanofibres-Hightly efficient
photocatalyst for the degradation of rhodamine B. J Catal Commun 12:1037–1041
Hwang DW, Kim HG, Jang JS, Bae SW, Ji SM, Lee JS (2004) Photocatalytic decomposition of
water-methanol solution over metal-doped layered perovskites under visible light irradiation.
Catal Today 93:845–850
Hwang DW, Kim HG, Lee JS, Kim J, Le W, Oh SH (2005) Photocatalytic hydrogen production
from water over M-doped La 2 Ti 2 O 7 (M¼Cr, Fe) under visible light irradiation (λ > 420 nm). J
Phys Chem B 109:2093–2102
Ishii T, Kato H, Kudo A (2004) Photocatalytic activities of noble metal ion doped SrTiO 3 under
visible light irradiation. J Phys Chem B 108:8992–8995
Jabbari V, Hamadanian M, Karimzadeh S, Villagran D (2015) Enhanced charge carrier efficiency
and solar light-induced photocatalytic activity of TiO 2 nanoparticles through doping of silver
nanoclusters and C-N-S nonmetals. J Ind Eng Chem 35:132–139
Janczarek M, Kisch H, Hupka J (2007) Photoelectrochemical characterization of nitrogen-modified
TiO 2 . Physicochem Probl Mineral Process 41:159–166
Jia F, Yao Z, Jiang Z, Li C (2011) Preparation of carbon coated TiO 2 nanotubes film and its catalytic
application for H 2 generation. Catal Commun 12:497–501
Jiang GD, Lin ZF, Chen C, Zhu L, Chang Q, Wang N, Wei W, Tang H (2011) TiO 2 nanoparticles
assembled on graphene oxide nanosheets with high photocatalytic activity for removal of
polluants. Carbon 49:2693–2701
Jin M, Jeong HK, Yu WJ, Bae DJ, Kang BR, Lee YH (2009) Graphene oxide thin film field effect
transistors without reduction. J Phys D Appl Phys 42:135109
Joy J, Mathew J, George SC (2018) Nanomaterials for photoelectrochemical water splitting – review.
Int J Hydrog Energy 43(10):4804–4817. https://doi.org/10.1016/j.ijhydene.2018.01.099
254
A. Boudjemaa and S. Gómez-Ruiz
