1 3
Topics in Current Chemistry (2020) 378:6
115. Taffa DH, Dillert R, Ulpe AC, Bauerfeind KCL, Bredow T, Bahnemann DW, Wark M (2017) Photoelectrochemical and theoretical investigations of spinel type ferrites (M x Fe 3–x O 4 ) for water splitting: a mini-review. J Photon Energy 7:012009
116. Cao J, Kako T, Li P, Ouyang S, Ye J (2011) Fabrication of p-type CaFe 2 O 4 nanofilms for photoelectrochemical hydrogen generation. Electrochem Commun 13:275–278
117. Ida S, Yamada K, Matsunaga T, Hagiwara H, Matsumoto Y, Ishihara T (2010) Preparation of p-type
CaFe 2 O 4 photocathodes for producing hydrogen from water. J Am Chem Soc 132:17343–17345
118. Ida S, Yamada K, Matsunaga T, Hagiwara H, Ishihara T, Taniguchi T, Koinuma M, Matsumoto Y
(2011) Photoelectrochemical hydrogen production from water using p-type CaFe 2 O 4 and n-type
ZnO. Electrochemistry 79:797–800
119. Ida S, Yamada K, Matsuka M, Hagiwara H, Ishihara T (2012) Photoelectrochemical hydrogen
production from water using p-type and n-type oxide semiconductor electrodes. Electrochim Acta
82:397–401
120. Matsumoto Y, Omae M, Sugiyama K, Sato E- (1987) New photocathode materials for hydrogen
evolution: CaFe 2 O 4 and Sr 7 Fe 10 O 22 . J Phys Chem 91:577–581
121. Matsumoto Y, Sugiyama K, Sato E- (1988) Improvement of CaFe 2 O 4 photocathode by doping with
Na and Mg. J Solid State Chem 74:117–125
122. Cao J, Xing J, Zhang Y, Tong H, Bi Y, Kako T, Takeguchi M, Ye J (2013) Photoelectrochemical properties of nanomultiple CaFe 2 O 4 /ZnFe 2 O 4 pn junction photoelectrodes. Langmuir
29:3116–3124
123. Sekizawa K, Nonaka T, Arai T, Morikawa T (2014) Structural improvement of CaFe 2 O 4 by metal
doping toward enhanced cathodic photocurrent. ACS Appl Mater Interfaces 6:10969–10973
124. Kung HH, Jarrett HS, Sleight AW, Ferretti A (1977) Semiconducting oxide anodes in photoassisted
electrolysis of water. J Appl Phys 48:2463–2469
125. Archer MD, Morris GC, Yim GK (1981) Electrochemical approaches to solar energy conversion:
a brief overview and preliminary results obtained with n-type cobalt ferrite. J Electroanal Chem
118:89–100
126. Yang H, Mao Y, Li M, Liu P, Tong Y (2013) Electrochemical synthesis of CoFe 2 O 4 porous
nanosheets for visible light driven photoelectrochemical applications. New J Chem 37:2965–2968
127. Rekhila G, Bessekhouad Y, Trari M (2013) Visible light hydrogen production on the novel ferrite
NiFe 2 O 4 . Int J Hydrogen Energy 38:6335–6343
128. de Haart LGJ, Blasse G (1985) Photoelectrochemical properties of ferrites with the spinel structure. J Electrochem Soc 132:2933–2938
129. Benko FA, Koffyberg FP (1986) The effect of defects on some photoelectrochemical properties of
semiconducting MgFe 2 O 4 . Mater Res Bull 21:1183–1188
130. Zazoua H, Boudjemaa A, Chebout R, Bachari K (2014) Enhanced photocatalytic hydrogen production under visible light over a material based on magnesium ferrite derived from layered double
hydroxides (LDHs). Int J Energy Res 38:2010–2018
131. Chang BT, Jakani M, Campet G, Claverie J (1988) Photoelectrochemical study of a spinel-type
titanomagnetite. J Solid State Chem 72:201–208
132. Matsumoto Y, Omae M, Watanabe I, Sato E- (1986) Photoelectrochemical properties of the Zn-TiFe spinel oxides. J Electrochem Soc 133:711–716
133. Tahir AA, Wijayantha KGU (2010) Photoelectrochemical water splitting at nanostructured
ZnFe 2 O 4 electrodes. J Photochem Photobiol A Chem 216:119–125
134. Tahir AA, Burch HA, Wijayantha KGU, Pollet BG (2013) A new route to control texture of materials: nanostructured ZnFe 2 O 4 photoelectrodes. Int J Hydrogen Energy 38:4315–4323
135. Senftle TP, Carter EA (2017) The holy grail: chemistry enabling an economically viable CO 2 capture, utilization, and storage strategy. Acc Chem Res 50:472–475
136. Fresno F, Villar-García IJ, Collado L, Alfonso-González E, Renones P, Barawi M, De La Pena
O’Shea VA (2018) Mechanistic view of the main current issues in photocatalytic CO 2 reduction. J
Phys Chem Lett 9:7192–7204
137. Mota FM, Kim DH (2019) From CO 2 methanation to ambitious long-chain hydrocarbons: alternative fuels paving the path to sustainability. Chem Soc Rev 48:205–259
138. Ran J, Jaroniec M, Qiao S (2018) Cocatalysts in semiconductor-based photocatalytic CO 2 reduction: achievements, challenges, and opportunities. Adv Mater. https ://doi.org/10.1002/adma.20170
4649
139. Lais A, Gondal MA, Dastageer MA (2018) Semiconducting oxide photocatalysts for reduction of
CO 2 to methanol. Environ Chem Lett 16:183–210
159
Reprinted from the journal
Topics in Current Chemistry (2020) 378:6
115. Taffa DH, Dillert R, Ulpe AC, Bauerfeind KCL, Bredow T, Bahnemann DW, Wark M (2017) Photoelectrochemical and theoretical investigations of spinel type ferrites (M x Fe 3–x O 4 ) for water splitting: a mini-review. J Photon Energy 7:012009
116. Cao J, Kako T, Li P, Ouyang S, Ye J (2011) Fabrication of p-type CaFe 2 O 4 nanofilms for photoelectrochemical hydrogen generation. Electrochem Commun 13:275–278
117. Ida S, Yamada K, Matsunaga T, Hagiwara H, Matsumoto Y, Ishihara T (2010) Preparation of p-type
CaFe 2 O 4 photocathodes for producing hydrogen from water. J Am Chem Soc 132:17343–17345
118. Ida S, Yamada K, Matsunaga T, Hagiwara H, Ishihara T, Taniguchi T, Koinuma M, Matsumoto Y
(2011) Photoelectrochemical hydrogen production from water using p-type CaFe 2 O 4 and n-type
ZnO. Electrochemistry 79:797–800
119. Ida S, Yamada K, Matsuka M, Hagiwara H, Ishihara T (2012) Photoelectrochemical hydrogen
production from water using p-type and n-type oxide semiconductor electrodes. Electrochim Acta
82:397–401
120. Matsumoto Y, Omae M, Sugiyama K, Sato E- (1987) New photocathode materials for hydrogen
evolution: CaFe 2 O 4 and Sr 7 Fe 10 O 22 . J Phys Chem 91:577–581
121. Matsumoto Y, Sugiyama K, Sato E- (1988) Improvement of CaFe 2 O 4 photocathode by doping with
Na and Mg. J Solid State Chem 74:117–125
122. Cao J, Xing J, Zhang Y, Tong H, Bi Y, Kako T, Takeguchi M, Ye J (2013) Photoelectrochemical properties of nanomultiple CaFe 2 O 4 /ZnFe 2 O 4 pn junction photoelectrodes. Langmuir
29:3116–3124
123. Sekizawa K, Nonaka T, Arai T, Morikawa T (2014) Structural improvement of CaFe 2 O 4 by metal
doping toward enhanced cathodic photocurrent. ACS Appl Mater Interfaces 6:10969–10973
124. Kung HH, Jarrett HS, Sleight AW, Ferretti A (1977) Semiconducting oxide anodes in photoassisted
electrolysis of water. J Appl Phys 48:2463–2469
125. Archer MD, Morris GC, Yim GK (1981) Electrochemical approaches to solar energy conversion:
a brief overview and preliminary results obtained with n-type cobalt ferrite. J Electroanal Chem
118:89–100
126. Yang H, Mao Y, Li M, Liu P, Tong Y (2013) Electrochemical synthesis of CoFe 2 O 4 porous
nanosheets for visible light driven photoelectrochemical applications. New J Chem 37:2965–2968
127. Rekhila G, Bessekhouad Y, Trari M (2013) Visible light hydrogen production on the novel ferrite
NiFe 2 O 4 . Int J Hydrogen Energy 38:6335–6343
128. de Haart LGJ, Blasse G (1985) Photoelectrochemical properties of ferrites with the spinel structure. J Electrochem Soc 132:2933–2938
129. Benko FA, Koffyberg FP (1986) The effect of defects on some photoelectrochemical properties of
semiconducting MgFe 2 O 4 . Mater Res Bull 21:1183–1188
130. Zazoua H, Boudjemaa A, Chebout R, Bachari K (2014) Enhanced photocatalytic hydrogen production under visible light over a material based on magnesium ferrite derived from layered double
hydroxides (LDHs). Int J Energy Res 38:2010–2018
131. Chang BT, Jakani M, Campet G, Claverie J (1988) Photoelectrochemical study of a spinel-type
titanomagnetite. J Solid State Chem 72:201–208
132. Matsumoto Y, Omae M, Watanabe I, Sato E- (1986) Photoelectrochemical properties of the Zn-TiFe spinel oxides. J Electrochem Soc 133:711–716
133. Tahir AA, Wijayantha KGU (2010) Photoelectrochemical water splitting at nanostructured
ZnFe 2 O 4 electrodes. J Photochem Photobiol A Chem 216:119–125
134. Tahir AA, Burch HA, Wijayantha KGU, Pollet BG (2013) A new route to control texture of materials: nanostructured ZnFe 2 O 4 photoelectrodes. Int J Hydrogen Energy 38:4315–4323
135. Senftle TP, Carter EA (2017) The holy grail: chemistry enabling an economically viable CO 2 capture, utilization, and storage strategy. Acc Chem Res 50:472–475
136. Fresno F, Villar-García IJ, Collado L, Alfonso-González E, Renones P, Barawi M, De La Pena
O’Shea VA (2018) Mechanistic view of the main current issues in photocatalytic CO 2 reduction. J
Phys Chem Lett 9:7192–7204
137. Mota FM, Kim DH (2019) From CO 2 methanation to ambitious long-chain hydrocarbons: alternative fuels paving the path to sustainability. Chem Soc Rev 48:205–259
138. Ran J, Jaroniec M, Qiao S (2018) Cocatalysts in semiconductor-based photocatalytic CO 2 reduction: achievements, challenges, and opportunities. Adv Mater. https ://doi.org/10.1002/adma.20170
4649
139. Lais A, Gondal MA, Dastageer MA (2018) Semiconducting oxide photocatalysts for reduction of
CO 2 to methanol. Environ Chem Lett 16:183–210
159
Reprinted from the journal
