1 3
Topics in Current Chemistry (2020) 378:6
159. Chen Z, Fan T, Zhang Q, He J, Fan H, Sun Y, Yi X, Li J (2019) Interface engineering: surface
hydrophilic regulation of LaFeO 3 towards enhanced visible light photocatalytic hydrogen evolution. J Colloid Interface Sci 536:105–111
160. Hojamberdiev M, Kawashima K, Kumar M, Yamakata A, Yubuta K, Gurlo A, Hasegawa M,
Domen K, Teshima K (2017) Engaging the flux-grown La 1–x Sr x Fe 1–y Ti y O 3 crystals in visible-lightdriven photocatalytic hydrogen generation. Int J Hydrogen Energy 42:27024–27033
161. Chen D, Zhang F, Li Q, Wang W, Qian G, Jin Y, Xu Z (2017) A promising synergistic effect of
nickel ferrite loaded on the layered double hydroxide-derived carrier for enhanced photocatalytic
hydrogen evolution. Int J Hydrogen Energy 42:867–875
162. Matsumoto Y, Obata M, Hombo J (1994) Photocatalytic reduction of carbon dioxide on p-type
CaFe 2 O 4 powder. J Phys Chem 98:2950–2951
163. Xiao J, Yang W, Gao S, Sun C, Li Q (2018) Fabrication of ultrafine ZnFe 2 O 4 nanoparticles for
efficient photocatalytic reduction CO 2 under visible light illumination. J Mater Sci Technol
34:2331–2336
164. Kim HG, Borse PH, Jang JS, Jeong ED, Jung O-, Suh YJ, Lee JS (2009) Fabrication of
CaFe 2 O 4 /MgFe 2 O 4 bulk heterojunction for enhanced visible light photocatalysis. Chem Commun 39:5889–5891
165. Vijayaraghavan T, Lakshmana Reddy N, Shankar MV, Vadivel S, Ashok A (2018) A co-catalyst
free, eco-friendly, novel visible light absorbing iron based complex oxide nanocomposites for
enhanced photocatalytic hydrogen evolution. Int J Hydrogen Energy 43:14417–14426
166. An X, Cheng D, Dai L, Wang B, Ocampo HJ, Nasrallah J, Jia X, Zou J, Long Y, Ni Y (2017)
Synthesis of nano-fibrillated cellulose/magnetite/titanium dioxide (NFC@Fe 3 O 4 @TNP) nanocomposites and their application in the photocatalytic hydrogen generation. Appl Catal B Environ 206:53–64
167. Beydoun D, Amal R, Low GK-, McEvoy S (2000) Novel photocatalyst: titania-coated magnetite. activity and photodissolution. J Phys Chem B 104:4387–4396
168. Hafeez HY, Lakhera SK, Karthik P, Anpo M, Neppolian B (2018) Facile construction of ternary
CuFe 2 O 4 –TiO 2 nanocomposite supported reduced graphene oxide (rGO) photocatalysts for the
efficient hydrogen production. Appl Surf Sci 449:772–779
169. Uddin MR, Khan MR, Rahman MW, Yousuf A, Cheng CK (2015) Photocatalytic reduction of
CO 2 into methanol over CuFe 2 O 4 /TiO 2 under visible light irradiation. React Kinet Mech Catal
116:589–604
170. Song G, Xin F, Yin X (2015) Photocatalytic reduction of carbon dioxide over ZnFe 2 O 4 /TiO 2
nanobelts heterostructure in cyclohexanol. J Colloid Interface Sci 442:60–66
171. Song G, Wu X, Xin F, Yin X (2017) ZnFe 2 O 4 deposited on BiOCl with exposed (001) and (010)
facets for photocatalytic reduction of CO 2 in cyclohexanol. Front Chem Sci Eng 11:197–204
172. Song G, Wu X, Xin F, Yin X (2017) Synthesis of different shapes ZnFe 2 O 4 -BiOCl nanocomposites for photocatalytic reduction of CO 2 in cyclohexanol. J Nanosci Nanotechnol 17:2438–2446
173. Soto-Arreola A, Huerta-Flores AM, Mora-Hernández JM, Torres-Martínez LM (2018)
Improved photocatalytic activity for water splitting over MFe 2 O 4 –ZnO (M = Cu and Ni) type-ll
heterostructures. J Photochem Photobiol A Chem 364:433–442
174. Karamian E, Sharifnia S (2018) Enhanced visible light photocatalytic activity of
BiFeO 3 -ZnO p–n heterojunction for CO 2 reduction. Mater Sci Eng B Solid State Adv Technol
238–239:142–148
175. Guo J, Wang K, Wang X (2017) Photocatalytic reduction of CO 2 with H 2 O vapor under visible
light over Ce doped ZnFe 2 O 4 . Catal Sci Technol 7:6013–6025
176. Khan I, Sun N, Zhang Z, Li Z, Humayun M, Ali S, Qu Y, Jing L (2019) Improved visible-light
photoactivities of porous LaFeO 3 by coupling with nanosized alkaline earth metal oxides and
mechanism insight. Catal Sci Technol 9:3149–3157
177. Kwon S, Liao P, Stair PC, Snurr RQ (2016) Alkaline-earth metal-oxide overlayers on TiO 2 :
application toward CO 2 photoreduction. Catal Sci Technol 6:7885–7895
178. Ong W-, Tan L-, Ng YH, Yong S-, Chai S- (2016) Graphitic carbon nitride (g-C 3 N 4 )-based photocatalysts for artificial photosynthesis and environmental remediation: are we a step closer to
achieving sustainability? Chem Rev 116:7159–7329
179. Chen J, Zhao D, Diao Z, Wang M, Guo L, Shen S (2015) Bifunctional modification of graphitic
carbon nitride with MgFe 2 O 4 for enhanced photocatalytic hydrogen generation. ACS Appl
Mater Interfaces 7:18843–18848
161
Reprinted from the journal
Topics in Current Chemistry (2020) 378:6
159. Chen Z, Fan T, Zhang Q, He J, Fan H, Sun Y, Yi X, Li J (2019) Interface engineering: surface
hydrophilic regulation of LaFeO 3 towards enhanced visible light photocatalytic hydrogen evolution. J Colloid Interface Sci 536:105–111
160. Hojamberdiev M, Kawashima K, Kumar M, Yamakata A, Yubuta K, Gurlo A, Hasegawa M,
Domen K, Teshima K (2017) Engaging the flux-grown La 1–x Sr x Fe 1–y Ti y O 3 crystals in visible-lightdriven photocatalytic hydrogen generation. Int J Hydrogen Energy 42:27024–27033
161. Chen D, Zhang F, Li Q, Wang W, Qian G, Jin Y, Xu Z (2017) A promising synergistic effect of
nickel ferrite loaded on the layered double hydroxide-derived carrier for enhanced photocatalytic
hydrogen evolution. Int J Hydrogen Energy 42:867–875
162. Matsumoto Y, Obata M, Hombo J (1994) Photocatalytic reduction of carbon dioxide on p-type
CaFe 2 O 4 powder. J Phys Chem 98:2950–2951
163. Xiao J, Yang W, Gao S, Sun C, Li Q (2018) Fabrication of ultrafine ZnFe 2 O 4 nanoparticles for
efficient photocatalytic reduction CO 2 under visible light illumination. J Mater Sci Technol
34:2331–2336
164. Kim HG, Borse PH, Jang JS, Jeong ED, Jung O-, Suh YJ, Lee JS (2009) Fabrication of
CaFe 2 O 4 /MgFe 2 O 4 bulk heterojunction for enhanced visible light photocatalysis. Chem Commun 39:5889–5891
165. Vijayaraghavan T, Lakshmana Reddy N, Shankar MV, Vadivel S, Ashok A (2018) A co-catalyst
free, eco-friendly, novel visible light absorbing iron based complex oxide nanocomposites for
enhanced photocatalytic hydrogen evolution. Int J Hydrogen Energy 43:14417–14426
166. An X, Cheng D, Dai L, Wang B, Ocampo HJ, Nasrallah J, Jia X, Zou J, Long Y, Ni Y (2017)
Synthesis of nano-fibrillated cellulose/magnetite/titanium dioxide (NFC@Fe 3 O 4 @TNP) nanocomposites and their application in the photocatalytic hydrogen generation. Appl Catal B Environ 206:53–64
167. Beydoun D, Amal R, Low GK-, McEvoy S (2000) Novel photocatalyst: titania-coated magnetite. activity and photodissolution. J Phys Chem B 104:4387–4396
168. Hafeez HY, Lakhera SK, Karthik P, Anpo M, Neppolian B (2018) Facile construction of ternary
CuFe 2 O 4 –TiO 2 nanocomposite supported reduced graphene oxide (rGO) photocatalysts for the
efficient hydrogen production. Appl Surf Sci 449:772–779
169. Uddin MR, Khan MR, Rahman MW, Yousuf A, Cheng CK (2015) Photocatalytic reduction of
CO 2 into methanol over CuFe 2 O 4 /TiO 2 under visible light irradiation. React Kinet Mech Catal
116:589–604
170. Song G, Xin F, Yin X (2015) Photocatalytic reduction of carbon dioxide over ZnFe 2 O 4 /TiO 2
nanobelts heterostructure in cyclohexanol. J Colloid Interface Sci 442:60–66
171. Song G, Wu X, Xin F, Yin X (2017) ZnFe 2 O 4 deposited on BiOCl with exposed (001) and (010)
facets for photocatalytic reduction of CO 2 in cyclohexanol. Front Chem Sci Eng 11:197–204
172. Song G, Wu X, Xin F, Yin X (2017) Synthesis of different shapes ZnFe 2 O 4 -BiOCl nanocomposites for photocatalytic reduction of CO 2 in cyclohexanol. J Nanosci Nanotechnol 17:2438–2446
173. Soto-Arreola A, Huerta-Flores AM, Mora-Hernández JM, Torres-Martínez LM (2018)
Improved photocatalytic activity for water splitting over MFe 2 O 4 –ZnO (M = Cu and Ni) type-ll
heterostructures. J Photochem Photobiol A Chem 364:433–442
174. Karamian E, Sharifnia S (2018) Enhanced visible light photocatalytic activity of
BiFeO 3 -ZnO p–n heterojunction for CO 2 reduction. Mater Sci Eng B Solid State Adv Technol
238–239:142–148
175. Guo J, Wang K, Wang X (2017) Photocatalytic reduction of CO 2 with H 2 O vapor under visible
light over Ce doped ZnFe 2 O 4 . Catal Sci Technol 7:6013–6025
176. Khan I, Sun N, Zhang Z, Li Z, Humayun M, Ali S, Qu Y, Jing L (2019) Improved visible-light
photoactivities of porous LaFeO 3 by coupling with nanosized alkaline earth metal oxides and
mechanism insight. Catal Sci Technol 9:3149–3157
177. Kwon S, Liao P, Stair PC, Snurr RQ (2016) Alkaline-earth metal-oxide overlayers on TiO 2 :
application toward CO 2 photoreduction. Catal Sci Technol 6:7885–7895
178. Ong W-, Tan L-, Ng YH, Yong S-, Chai S- (2016) Graphitic carbon nitride (g-C 3 N 4 )-based photocatalysts for artificial photosynthesis and environmental remediation: are we a step closer to
achieving sustainability? Chem Rev 116:7159–7329
179. Chen J, Zhao D, Diao Z, Wang M, Guo L, Shen S (2015) Bifunctional modification of graphitic
carbon nitride with MgFe 2 O 4 for enhanced photocatalytic hydrogen generation. ACS Appl
Mater Interfaces 7:18843–18848
161
Reprinted from the journal
