7. Ali M, Zhou F-L, Chen K, Kotzur C, Xiao C-L, Bourgeois L, Zhang X-Y, MacFarlane D-R
(2016) Nanostructured photoelectrochemical solar cell for nitrogen reduction using plasmonenhanced black silicon. Nat Commun 11335:1–5
8. Li Q-Y, Guan Z-P, Wu D, Zhao X-G, Bao S-Y, Tian B-Z, Zhang J-L (2017) Z-Scheme BiOClAu-CdS heterostructure with enhanced sunlight-driven photocatalytic activity in degrading
water dyes and antibiotics. ACS Sustain Chem Eng 5:6958–6968
9. Li Q-Y, Li T-Y, Chang S-Z, Tao Q-S, Tian B-Z, Zhang J-L (2016) Enlarging {110} exposed
facets of anatase TiO 2 by the synergistic action of capping agents. CrystEngComm
18:5074–5078
10. Li T-Y, Tian B-Z, Zhang J-L, Dong R-F, Wang T-T, Yang F (2013) Facile tailoring of anatase
TiO 2 morphology by use of H 2 O 2 : from microflowers with dominant {101} facets to microspheres with exposed {001} facets. Ind Eng Chem Res 52(20):6704–6712
11. Weon S-H, Choi J-M, Park T-H, Choi W-Y (2017) Freestanding doubly open-ended TiO 2
nanotubes for efficient photocatalytic degradation of volatile organic compounds. Appl Catal
B 205:386–392
12. Ren L, Li Y-Z, Hou J-T, Bai J-L, Mao M-Y, Zeng M, Zhao X-J, Li N (2016) The pivotal effect
of the interaction between reactant and anatase TiO 2 nanosheets with exposed {001} facets on
photocatalysis for the photocatalytic purification of VOCs. Appl Catal B 181:625–634
13. Wu D, Yue S-T, Wang W, An T-C, Li G-Y, Yip H-Y, Zhao H-J, Wong P-K (2016) Boron
doped BiOBr nanosheets with enhanced photocatalytic inactivation of Escherichia coli. Appl
Catal B 192:35–45
14. Wang W-J, An T-C, Li G-Y, Xia D-H, Zhao H-J, Yu J-C, Wong P-K (2017) Earth-abundant
Ni 2 P/g-C 3 N 4 lamellar nanohydrids for enhanced photocatalytic hydrogen evolution and bacterial inactivation under visible light irradiation. Appl Catal B 217:570–580
15. Rtimi S, Giannakis S, Sanjines R, Pulgarin C, Bensimon M, Kiwi J (2016) Insight on the
photocatalytic bacterial inactivation by co-sputtered TiO 2 -Cu in aerobic and anaerobic conditions. Appl Catal B 182:277–285
16. Kuehnel M-F, Orchard K-L, Dalle K-E, Reisner E (2017) Selective photocatalytic CO 2
reduction in water through anchoring of a molecular Ni catalyst on CdS nanocrystals. J Am
Chem Soc 139:7217–7223
17. Takeda H, Ohashi K, Sekine A, Ishitani O (2016) Photocatalytic CO 2 reduction using Cu
(I) photosensitizers with a Fe(II) catalyst. J Am Chem Soc 138:4354–4357
18. Dong C-Y, Xing M-Y, Zhang J-L (2016) Double-cocatalysts promote charge separation
efficiency in CO 2 photoreduction: spatial location matters. Mater Horiz 3:608–612
19. Dong C-Y, Xing M-Y, Zhang J-L (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 7:2962–2966
20. Fang W-Z, Dappozze F, Guillard C, Zhou Y, Xing M-Y, Mishra S, Daniele S, Zhang J-L
(2017) Zn-assisted TiO 2–x photocatalyst with efficient charge separation for enhanced
photocatalytic activities. J Phys Chem C 121:17068–17076
21. Schneider J, Matsuoka M, Takeuchi M, Zhang J-L, Horiuchi Y, Anpo M, Bahnemann D-W
(2014) Understanding TiO 2 photocatalysis: mechanisms and materials. Chem Rev
114:9919–9986
22. Qiu B-C, Xing M-Y, Zhang J-L (2014) Mesoporous TiO 2 nanocrystals grown in situ on
graphene aerogels for high photocatalysis and lithium-ion batteries. J Am Chem Soc
136:5852–5855
23. Qi D-Y, Lu L-J, Wang L-Z, Zhang J-L (2014) Improved SERS sensitivity on plasmon-free
TiO 2 photonic microarray by enhancing light-matter coupling. J Am Chem Soc
136:9886–9889
24. Li X, Liu P-W, Mao Y, Xing M-Y, Zhang J-L (2015) Preparation of homogeneous nitrogendoped mesoporous TiO 2 spheres with enhanced visible-light photocatalysis. Appl Catal B
164:352–359
336
13 Syntheses and Applications of Silver Halide-Based Photocatalysts
(2016) Nanostructured photoelectrochemical solar cell for nitrogen reduction using plasmonenhanced black silicon. Nat Commun 11335:1–5
8. Li Q-Y, Guan Z-P, Wu D, Zhao X-G, Bao S-Y, Tian B-Z, Zhang J-L (2017) Z-Scheme BiOClAu-CdS heterostructure with enhanced sunlight-driven photocatalytic activity in degrading
water dyes and antibiotics. ACS Sustain Chem Eng 5:6958–6968
9. Li Q-Y, Li T-Y, Chang S-Z, Tao Q-S, Tian B-Z, Zhang J-L (2016) Enlarging {110} exposed
facets of anatase TiO 2 by the synergistic action of capping agents. CrystEngComm
18:5074–5078
10. Li T-Y, Tian B-Z, Zhang J-L, Dong R-F, Wang T-T, Yang F (2013) Facile tailoring of anatase
TiO 2 morphology by use of H 2 O 2 : from microflowers with dominant {101} facets to microspheres with exposed {001} facets. Ind Eng Chem Res 52(20):6704–6712
11. Weon S-H, Choi J-M, Park T-H, Choi W-Y (2017) Freestanding doubly open-ended TiO 2
nanotubes for efficient photocatalytic degradation of volatile organic compounds. Appl Catal
B 205:386–392
12. Ren L, Li Y-Z, Hou J-T, Bai J-L, Mao M-Y, Zeng M, Zhao X-J, Li N (2016) The pivotal effect
of the interaction between reactant and anatase TiO 2 nanosheets with exposed {001} facets on
photocatalysis for the photocatalytic purification of VOCs. Appl Catal B 181:625–634
13. Wu D, Yue S-T, Wang W, An T-C, Li G-Y, Yip H-Y, Zhao H-J, Wong P-K (2016) Boron
doped BiOBr nanosheets with enhanced photocatalytic inactivation of Escherichia coli. Appl
Catal B 192:35–45
14. Wang W-J, An T-C, Li G-Y, Xia D-H, Zhao H-J, Yu J-C, Wong P-K (2017) Earth-abundant
Ni 2 P/g-C 3 N 4 lamellar nanohydrids for enhanced photocatalytic hydrogen evolution and bacterial inactivation under visible light irradiation. Appl Catal B 217:570–580
15. Rtimi S, Giannakis S, Sanjines R, Pulgarin C, Bensimon M, Kiwi J (2016) Insight on the
photocatalytic bacterial inactivation by co-sputtered TiO 2 -Cu in aerobic and anaerobic conditions. Appl Catal B 182:277–285
16. Kuehnel M-F, Orchard K-L, Dalle K-E, Reisner E (2017) Selective photocatalytic CO 2
reduction in water through anchoring of a molecular Ni catalyst on CdS nanocrystals. J Am
Chem Soc 139:7217–7223
17. Takeda H, Ohashi K, Sekine A, Ishitani O (2016) Photocatalytic CO 2 reduction using Cu
(I) photosensitizers with a Fe(II) catalyst. J Am Chem Soc 138:4354–4357
18. Dong C-Y, Xing M-Y, Zhang J-L (2016) Double-cocatalysts promote charge separation
efficiency in CO 2 photoreduction: spatial location matters. Mater Horiz 3:608–612
19. Dong C-Y, Xing M-Y, Zhang J-L (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 7:2962–2966
20. Fang W-Z, Dappozze F, Guillard C, Zhou Y, Xing M-Y, Mishra S, Daniele S, Zhang J-L
(2017) Zn-assisted TiO 2–x photocatalyst with efficient charge separation for enhanced
photocatalytic activities. J Phys Chem C 121:17068–17076
21. Schneider J, Matsuoka M, Takeuchi M, Zhang J-L, Horiuchi Y, Anpo M, Bahnemann D-W
(2014) Understanding TiO 2 photocatalysis: mechanisms and materials. Chem Rev
114:9919–9986
22. Qiu B-C, Xing M-Y, Zhang J-L (2014) Mesoporous TiO 2 nanocrystals grown in situ on
graphene aerogels for high photocatalysis and lithium-ion batteries. J Am Chem Soc
136:5852–5855
23. Qi D-Y, Lu L-J, Wang L-Z, Zhang J-L (2014) Improved SERS sensitivity on plasmon-free
TiO 2 photonic microarray by enhancing light-matter coupling. J Am Chem Soc
136:9886–9889
24. Li X, Liu P-W, Mao Y, Xing M-Y, Zhang J-L (2015) Preparation of homogeneous nitrogendoped mesoporous TiO 2 spheres with enhanced visible-light photocatalysis. Appl Catal B
164:352–359
336
13 Syntheses and Applications of Silver Halide-Based Photocatalysts
