Topics in Current Chemistry (2020) 378:6
1 3
93. Zhu K, Wang J, Wang Y, Jin C, Ganeshraja AS (2016) Visible-light-induced photocatalysis and
peroxymonosulfate activation over ZnFe 2 O 4 fine nanoparticles for degradation of Orange II. Catal
Sci Technol 6:2296–2304
94. Li C, Wang J, Wang B, Gong J, Lin Z (2012) Direct formation of reusable TiO 2 /CoFe 2 O 4 heterogeneous photocatalytic fibers via two-spinneret electrospinning. J Nanosci Nanotechnol
12:2496–2502
95. Mandal S, Natarajan S, Tamilselvi A, Mayadevi S (2016) Photocatalytic and antimicrobial activities of zinc ferrite nanoparticles synthesized through soft chemical route: a magnetically recyclable
catalyst for water/wastewater treatment. J Environ Chem Eng 4:2706–2712
96. Chen C, Butler E, Ahmad MA, Hung Y, Fu Y (2014) Characterizations of TiO 2 @Mn-Zn ferrite
powders for magnetic photocatalyst prepared from used alkaline batteries and waste steel pickling
liquor. Mater Res Bull 50:178–182
97. Meng W, Hu R, Yang J, Du Y, Li J, Wang H (2016) Influence of lanthanum-doping on photocatalytic properties of BiFeO 3 for phenol degradation. Cuihua Xuebao Chin J Catal 37:1283–1292
98. Xu Y-, Rao H-, Wang X-, Chen H-, Kuang D-, Su C- (2016) In situ formation of zinc ferrite modified Al-doped ZnO nanowire arrays for solar water splitting. J Mater Chem A 4:5124–5129
99. Li R, Cai M, Xie Z, Zhang Q, Zeng Y, Liu H, Liu G, Lv W (2019) Construction of heterostructured
CuFe 2 O 4 /g-C 3 N 4 nanocomposite as an efficient visible light photocatalyst with peroxydisulfate for
the organic oxidation. Appl Catal B Environ 244:974–982
100. Dumitru R, Ianculescu A, Păcurariu C, Lupa L, Pop A, Vasile B, Surdu A, Manea F (2019)
BiFeO 3 -synthesis, characterization and its photocatalytic activity towards doxorubicin degradation
from water. Ceram Int 45:2789–2802
101. Aghdam TR, Mehrizadeh H, Salari D, Tseng H-, Niaei A, Amini A (2018) Photocatalytic removal
of NO x over immobilized BiFeO 3 nanoparticles and effect of operational parameters. Korean J
Chem Eng 35:994–999
102. Gao J, Wu S, Han Y, Tan F, Shi Y, Liu M, Li X (2018) 3D mesoporous CuFe 2 O 4 as a catalyst
for photo-Fenton removal of sulfonamide antibiotics at near neutral pH. J Colloid Interface Sci
524:409–416
103. Samoila P, Cojocaru C, Sacarescu L, Dorneanu PP, Domocos A, Rotaru A (2017) Remarkable
catalytic properties of rare-earth doped nickel ferrites synthesized by sol–gel auto-combustion with
maleic acid as fuel for CWPO of dyes. Appl Catal B 202:21–32
104. Phan TTN, Nikoloski AN, Bahri PA, Li D (2018) Heterogeneous photo-Fenton degradation of
organics using highly efficient Cu-doped LaFeO 3 under visible light. J Ind Eng Chem 61:53–64
105. Li Y, Chen D, Fan S, Yang T (2019) Enhanced visible light assisted Fenton-like degradation of dye
via metal-doped zinc ferrite nanosphere prepared from metal-rich industrial wastewater. J Taiwan
Inst Chem Eng 96:185–192
106. Garcia-Muñoz P, Fresno F, Lefevre C, Robert D, Keller N (2020) Highly robust La 1–x Ti x FeO 3 dual
catalyst with combined photocatalytic and photo-CWPO activity under visible light for 4-chlorophenol removal in water. Appl Catal B Environ 262:118310
107. Yang X, Wang D (2018) Photocatalysis: from fundamental principles to materials and applications.
ACS Appl Energy Mater 1:6657–6693
108. Armaroli N, Balzani V (2011) The hydrogen issue. ChemSusChem 4:21–36
109. Christoforidis KC, Fornasiero P (2017) Photocatalytic hydrogen production: a rift into the future
energy supply. ChemCatChem 9:1523–1544
110. Colmenares JC (2019) Selective redox photocatalysis: is there any chance for solar bio-refineries?
Curr Opin Green Sustain Chem 15:38–46
111. Kudo A, Miseki Y (2009) Heterogeneous photocatalyst materials for water splitting. Chem Soc
Rev 38:253–278
112. Coronado JM, Fresno F, Hernández-Alonso MD, Portela R (2013) Design of advanced photocatalytic materials for energy and environmental applications. Green energy and technology, vol 71.
Springer, Berlin
113. Osterloh FE (2008) Inorganic materials as catalysts for photochemical splitting of water. Chem
Mater 20:35–54
114. Dillert R, Taffa DH, Wark M, Bredow T, Bahnemann DW (2015) Research Update: photoelectrochemical water splitting and photocatalytic hydrogen production using ferrites (MFe 2 O 4 ) under
visible light irradiation. APL Mater. https ://doi.org/10.1063/1.49317 63
158
Reprinted from the journal
1 3
93. Zhu K, Wang J, Wang Y, Jin C, Ganeshraja AS (2016) Visible-light-induced photocatalysis and
peroxymonosulfate activation over ZnFe 2 O 4 fine nanoparticles for degradation of Orange II. Catal
Sci Technol 6:2296–2304
94. Li C, Wang J, Wang B, Gong J, Lin Z (2012) Direct formation of reusable TiO 2 /CoFe 2 O 4 heterogeneous photocatalytic fibers via two-spinneret electrospinning. J Nanosci Nanotechnol
12:2496–2502
95. Mandal S, Natarajan S, Tamilselvi A, Mayadevi S (2016) Photocatalytic and antimicrobial activities of zinc ferrite nanoparticles synthesized through soft chemical route: a magnetically recyclable
catalyst for water/wastewater treatment. J Environ Chem Eng 4:2706–2712
96. Chen C, Butler E, Ahmad MA, Hung Y, Fu Y (2014) Characterizations of TiO 2 @Mn-Zn ferrite
powders for magnetic photocatalyst prepared from used alkaline batteries and waste steel pickling
liquor. Mater Res Bull 50:178–182
97. Meng W, Hu R, Yang J, Du Y, Li J, Wang H (2016) Influence of lanthanum-doping on photocatalytic properties of BiFeO 3 for phenol degradation. Cuihua Xuebao Chin J Catal 37:1283–1292
98. Xu Y-, Rao H-, Wang X-, Chen H-, Kuang D-, Su C- (2016) In situ formation of zinc ferrite modified Al-doped ZnO nanowire arrays for solar water splitting. J Mater Chem A 4:5124–5129
99. Li R, Cai M, Xie Z, Zhang Q, Zeng Y, Liu H, Liu G, Lv W (2019) Construction of heterostructured
CuFe 2 O 4 /g-C 3 N 4 nanocomposite as an efficient visible light photocatalyst with peroxydisulfate for
the organic oxidation. Appl Catal B Environ 244:974–982
100. Dumitru R, Ianculescu A, Păcurariu C, Lupa L, Pop A, Vasile B, Surdu A, Manea F (2019)
BiFeO 3 -synthesis, characterization and its photocatalytic activity towards doxorubicin degradation
from water. Ceram Int 45:2789–2802
101. Aghdam TR, Mehrizadeh H, Salari D, Tseng H-, Niaei A, Amini A (2018) Photocatalytic removal
of NO x over immobilized BiFeO 3 nanoparticles and effect of operational parameters. Korean J
Chem Eng 35:994–999
102. Gao J, Wu S, Han Y, Tan F, Shi Y, Liu M, Li X (2018) 3D mesoporous CuFe 2 O 4 as a catalyst
for photo-Fenton removal of sulfonamide antibiotics at near neutral pH. J Colloid Interface Sci
524:409–416
103. Samoila P, Cojocaru C, Sacarescu L, Dorneanu PP, Domocos A, Rotaru A (2017) Remarkable
catalytic properties of rare-earth doped nickel ferrites synthesized by sol–gel auto-combustion with
maleic acid as fuel for CWPO of dyes. Appl Catal B 202:21–32
104. Phan TTN, Nikoloski AN, Bahri PA, Li D (2018) Heterogeneous photo-Fenton degradation of
organics using highly efficient Cu-doped LaFeO 3 under visible light. J Ind Eng Chem 61:53–64
105. Li Y, Chen D, Fan S, Yang T (2019) Enhanced visible light assisted Fenton-like degradation of dye
via metal-doped zinc ferrite nanosphere prepared from metal-rich industrial wastewater. J Taiwan
Inst Chem Eng 96:185–192
106. Garcia-Muñoz P, Fresno F, Lefevre C, Robert D, Keller N (2020) Highly robust La 1–x Ti x FeO 3 dual
catalyst with combined photocatalytic and photo-CWPO activity under visible light for 4-chlorophenol removal in water. Appl Catal B Environ 262:118310
107. Yang X, Wang D (2018) Photocatalysis: from fundamental principles to materials and applications.
ACS Appl Energy Mater 1:6657–6693
108. Armaroli N, Balzani V (2011) The hydrogen issue. ChemSusChem 4:21–36
109. Christoforidis KC, Fornasiero P (2017) Photocatalytic hydrogen production: a rift into the future
energy supply. ChemCatChem 9:1523–1544
110. Colmenares JC (2019) Selective redox photocatalysis: is there any chance for solar bio-refineries?
Curr Opin Green Sustain Chem 15:38–46
111. Kudo A, Miseki Y (2009) Heterogeneous photocatalyst materials for water splitting. Chem Soc
Rev 38:253–278
112. Coronado JM, Fresno F, Hernández-Alonso MD, Portela R (2013) Design of advanced photocatalytic materials for energy and environmental applications. Green energy and technology, vol 71.
Springer, Berlin
113. Osterloh FE (2008) Inorganic materials as catalysts for photochemical splitting of water. Chem
Mater 20:35–54
114. Dillert R, Taffa DH, Wark M, Bredow T, Bahnemann DW (2015) Research Update: photoelectrochemical water splitting and photocatalytic hydrogen production using ferrites (MFe 2 O 4 ) under
visible light irradiation. APL Mater. https ://doi.org/10.1063/1.49317 63
158
Reprinted from the journal
