5. Yu J, Wang S, Low J et al (2013) Enhanced photocatalytic performance of direct Z-scheme
g-C 3 N 4 –TiO 2 photocatalysts for the decomposition of formaldehyde in air. Phys Chem Chem
Phys 15(39):16883–16890
6. Xing M, Shen F, Qiu B et al (2014) Highly-dispersed boron-doped graphene nanosheets loaded
with TiO 2 nanoparticles for enhancing CO 2 photoreduction. Sci Rep 4:6341
7. Ansari MB, Min BH, Mo YH et al (2011) CO 2 activation and promotional effect in the
oxidation of cyclic olefins over mesoporous carbon nitrides. Green Chem 13(6):1416–1421
8. Dong C, Xing M, Zhang J (2016) Economic hydrophobicity triggering of CO 2 photoreduction
for selective CH 4 generation on noble-metal-free TiO 2 –SiO 2 . J Phys Chem Lett 7(15):2962
9. Xing M, Zhang J, Chen F et al (2011) An economic method to prepare vacuum activated
photocatalysts with high photo-activities and photosensitivities. Chem Commun 47:4947
10. Dong C, Song H, Zhou Y et al (2016) Sulfur nanoparticles in situ growth on TiO 2 mesoporous
single crystals with enhanced solar light photocatalytic performance. RSC Adv 6
(81):77863–77869
11. Qiu B, Xing M, Yi Q, Zhang J (2015) Angew Chem 127(36):10667
12. Ashkarran AA, Ghavamipour M, Hamidinezhad H et al (2015) Enhanced visible light-induced
hydrophilicity in sol–gel-derived ag–TiO 2 hybrid nanolayers. Res Chem Intermed 41
(10):7299–7311
13. An L, Wang G, Cheng Y et al (2015) Ultrasonic-assisted synthesis of visible-light-driven TiO2/
Bi2O3 nanocomposite photocatalysts: characterization, properties and azo dye removal application. Res Chem Intermed 41(10):7449
14. Qiu B, Xing M, Zhang J (2014) Mesoporous TiO 2 nanocrystals grown in situ on graphene
aerogels for high photocatalysis and lithium-ion batteries. J Am Chem Soc 136(16):5852–5855
15. Kitano S, Murakami N, Ohno T et al (2013) Bifunctionality of Rh
3+ modifier on TiO 2 and
working mechanism of Rh
3+ /TiO 2 photocatalyst under irradiation of visible light. J Phys Chem
C 117(21):11008–11016
16. Shiraishi Y, Takeda Y, Sugano Y et al (2011) Highly efficient photocatalytic dehalogenation of
organic halides on TiO 2 loaded with bimetallic Pd–Pt alloy nanoparticles. Chem Commun 47
(27):7863–7865
17. Tsukamoto D, Shiro A, Shiraishi Y et al (2012) Photocatalytic H 2 O 2 production from ethanol/
O 2 system using TiO 2 loaded with au–ag bimetallic alloy nanoparticles. ACS Catal 2
(4):599–603
18. Qi D, Xing M, Zhang J (2014) Hydrophobic carbon-doped TiO 2 /MCF-F composite as a high
performance photocatalyst. J Phys Chem C 118(14):7329–7336
19. Xie Y, Kum J, Zhao X et al (2011) Enhanced photocatalytic activity of mesoporous
SN-codoped TiO 2 loaded with ag nanoparticles. Semicond Sci Technol 26(8):085–037
20. Wang P, Lei J, Xing M et al (2015) J Environ Chem Eng 3(2):961
21. Li H, Shen X, Liu Y, Wang L, Lei J, Zhang J (2016) J Alloys Compd 687
22. Ünlü H, Horing NJ, Dabowski J (eds) (2015) Low-dimensional and nanostructured materials
and devices: properties, synthesis, characterization, modelling and applications. Springer
23. Li H, Shen X, Liu Y et al (2015) Facile phase control for hydrothermal synthesis of anataserutile TiO 2 with enhanced photocatalytic activity. J Alloys Compd 646:380–386
24. Zhang D, Gu X, Jing F et al (2015) High performance ultraviolet detector based on TiO 2 /ZnO
heterojunction. J Alloys Compd 618:551–554
25. Lin L, Yang Y, Men L et al (2013) A highly efficient TiO 2 @ZnO n–p–n heterojunction nanorod
photocatalyst. Nanoscale 5(2):588–593
26. Malik R, Tomer VK, Chaudhary V et al (2016) Facile synthesis of hybridized mesoporous
au@TiO 2 /SnO 2 as efficient photocatalyst and selective VOC sensor. ChemistrySelect 1
(12):3247–3258
27. Zhang ZL, Wang ML, Mao YL (2015) Mater Technol 30(1):2
28. Lu X, Wang Q, Cui D (2010) Preparation and photocatalytic properties of g-C 3 N 4 /TiO 2 hybrid
composite. J Mater Sci Technol 26(10):925–930
194
7 The Preparation and Applications of g-C 3 N 4 /TiO 2 Heterojunction Catalysts
g-C 3 N 4 –TiO 2 photocatalysts for the decomposition of formaldehyde in air. Phys Chem Chem
Phys 15(39):16883–16890
6. Xing M, Shen F, Qiu B et al (2014) Highly-dispersed boron-doped graphene nanosheets loaded
with TiO 2 nanoparticles for enhancing CO 2 photoreduction. Sci Rep 4:6341
7. Ansari MB, Min BH, Mo YH et al (2011) CO 2 activation and promotional effect in the
oxidation of cyclic olefins over mesoporous carbon nitrides. Green Chem 13(6):1416–1421
8. Dong C, Xing M, Zhang J (2016) Economic hydrophobicity triggering of CO 2 photoreduction
for selective CH 4 generation on noble-metal-free TiO 2 –SiO 2 . J Phys Chem Lett 7(15):2962
9. Xing M, Zhang J, Chen F et al (2011) An economic method to prepare vacuum activated
photocatalysts with high photo-activities and photosensitivities. Chem Commun 47:4947
10. Dong C, Song H, Zhou Y et al (2016) Sulfur nanoparticles in situ growth on TiO 2 mesoporous
single crystals with enhanced solar light photocatalytic performance. RSC Adv 6
(81):77863–77869
11. Qiu B, Xing M, Yi Q, Zhang J (2015) Angew Chem 127(36):10667
12. Ashkarran AA, Ghavamipour M, Hamidinezhad H et al (2015) Enhanced visible light-induced
hydrophilicity in sol–gel-derived ag–TiO 2 hybrid nanolayers. Res Chem Intermed 41
(10):7299–7311
13. An L, Wang G, Cheng Y et al (2015) Ultrasonic-assisted synthesis of visible-light-driven TiO2/
Bi2O3 nanocomposite photocatalysts: characterization, properties and azo dye removal application. Res Chem Intermed 41(10):7449
14. Qiu B, Xing M, Zhang J (2014) Mesoporous TiO 2 nanocrystals grown in situ on graphene
aerogels for high photocatalysis and lithium-ion batteries. J Am Chem Soc 136(16):5852–5855
15. Kitano S, Murakami N, Ohno T et al (2013) Bifunctionality of Rh
3+ modifier on TiO 2 and
working mechanism of Rh
3+ /TiO 2 photocatalyst under irradiation of visible light. J Phys Chem
C 117(21):11008–11016
16. Shiraishi Y, Takeda Y, Sugano Y et al (2011) Highly efficient photocatalytic dehalogenation of
organic halides on TiO 2 loaded with bimetallic Pd–Pt alloy nanoparticles. Chem Commun 47
(27):7863–7865
17. Tsukamoto D, Shiro A, Shiraishi Y et al (2012) Photocatalytic H 2 O 2 production from ethanol/
O 2 system using TiO 2 loaded with au–ag bimetallic alloy nanoparticles. ACS Catal 2
(4):599–603
18. Qi D, Xing M, Zhang J (2014) Hydrophobic carbon-doped TiO 2 /MCF-F composite as a high
performance photocatalyst. J Phys Chem C 118(14):7329–7336
19. Xie Y, Kum J, Zhao X et al (2011) Enhanced photocatalytic activity of mesoporous
SN-codoped TiO 2 loaded with ag nanoparticles. Semicond Sci Technol 26(8):085–037
20. Wang P, Lei J, Xing M et al (2015) J Environ Chem Eng 3(2):961
21. Li H, Shen X, Liu Y, Wang L, Lei J, Zhang J (2016) J Alloys Compd 687
22. Ünlü H, Horing NJ, Dabowski J (eds) (2015) Low-dimensional and nanostructured materials
and devices: properties, synthesis, characterization, modelling and applications. Springer
23. Li H, Shen X, Liu Y et al (2015) Facile phase control for hydrothermal synthesis of anataserutile TiO 2 with enhanced photocatalytic activity. J Alloys Compd 646:380–386
24. Zhang D, Gu X, Jing F et al (2015) High performance ultraviolet detector based on TiO 2 /ZnO
heterojunction. J Alloys Compd 618:551–554
25. Lin L, Yang Y, Men L et al (2013) A highly efficient TiO 2 @ZnO n–p–n heterojunction nanorod
photocatalyst. Nanoscale 5(2):588–593
26. Malik R, Tomer VK, Chaudhary V et al (2016) Facile synthesis of hybridized mesoporous
au@TiO 2 /SnO 2 as efficient photocatalyst and selective VOC sensor. ChemistrySelect 1
(12):3247–3258
27. Zhang ZL, Wang ML, Mao YL (2015) Mater Technol 30(1):2
28. Lu X, Wang Q, Cui D (2010) Preparation and photocatalytic properties of g-C 3 N 4 /TiO 2 hybrid
composite. J Mater Sci Technol 26(10):925–930
194
7 The Preparation and Applications of g-C 3 N 4 /TiO 2 Heterojunction Catalysts
