67. Kataoka Y, Sato K, Miyazaki Y, Masuda K, Tanaka H, Naito S, Mori W (2009) Photocatalytic
hydrogen production from water using porous material [Ru 2 (p-BDC) 2 ] n . Energy Environ Sci 2
(4):397–400
68. Xiao J, Shang Q, Xiong Y, Zhang Q, Luo Y, Yu S, Jiang H (2016) Boosting photocatalytic
hydrogen production of a metal-organic framework decorated with platinum nanoparticles: the
platinum location matters. Angew Chem 128(32):9535–9539
69. Gomes Silva C, Luz I, Llabrés i, Xamena FX, Corma A, García H (2010) Water stable
Zr-benzenedicarboxylate metal-organic frameworks as photocatalysts for hydrogen generation.
Chem-Eur J 16(36):11133–11138
70. Fu Y, Sun D, Chen Y, Huang R, Ding Z, Fu X, Li Z (2012) An amine-functionalized titanium
metal-organic framework photocatalyst with visible-light-induced activity for CO 2 reduction.
Angew Chem 124(14):3420–3423
71. Alvaro M, Carbonell E, Ferrer B, Llabrés i, Xamena FX, Garcia H (2007) Semiconductor
behavior of a metal-organic framework (MOF). Chem-Eur J 13(18):5106–5112
72. Tachikawa T, Choi JR, Fujitsuka M, Majima T (2008) Photoinduced charge-transfer processes
on MOF-5 nanoparticles: elucidating differences between metal-organic frameworks and semiconductor metal oxides. J Phys Chem C 112(36):14090–14101
73. Yang H, He X, Wang F, Kang Y, Zhang J (2012) Doping copper into ZIF-67 for enhancing gas
uptake capacity and visible-light-driven photocatalytic degradation of organic dye. J Mater
Chem 22(41):21849–21851
74. Anpo M, Yamashita H, Ikeue K, Fujii Y, Zhang S, Ichihashi Y, Park DR, Suzuki Y, Koyano K,
Tatsumi T (1998) Photocatalytic reduction of CO 2 with H 2 O on Ti-MCM-41 and Ti-MCM-48
mesoporous zeolite catalysts. Catal Today 44(1–4):327–332
75. Takeuchi M, Dohshi S, Eura T, Anpo M (2003) Preparation of titanium-silicon binary oxide
thin film photocatalysts by an ionized cluster beam deposition method. Their photocatalytic
activity and photoinduced super-hydrophilicity. J Phys Chem B 107(51):14278–14282
76. Takeuchi M, Yamashita H, Matsuoka M, Anpo M, Hirao T, Itoh N, Iwamoto N (2000)
Photocatalytic decomposition of NO on titanium oxide thin film photocatalysts prepared by
an ionized cluster beam technique. Catal Lett 66(3):185–187
77. Anpo M, Aikawa N, Kubokawa Y, Che M, Louis C, Giamello E (1985) Photoluminescence and
photocatalytic activity of highly dispersed titanium oxide anchored onto porous Vycor glass. J
Phys Chem 89(23):5017–5021
78. Anpo M, Yamashita H, Ichihashi Y, Fujii Y, Honda M (1997) Photocatalytic reduction of CO 2
with H 2 O on titanium oxides anchored within micropores of zeolites: effects of the structure of
the active sites and the addition of Pt. J Phys Chem B 101(14):2632–2636
79. Anpo M (1997) In situ characterization of highly dispersed catalysts included within zeolite
cavities and their photocatalytic reactivities. Nouv Cim D 19(11):1641–1648
80. Yamashita H, Anpo M (2004) Application of an ion beam technique for the design of visible
light-sensitive, highly efficient and highly selective photocatalysts: ion-implantation and ionized cluster beam methods. Catal Surv Jpn 8(1):35–45
81. Hu Y, Rakhmawaty D, Matsuoka M, Takeuchi M, Anpo M (2006) Synthesis, characterization
and photocatalytic reactivity of Ti-containing micro- and mesoporous materials. J Porous Mater
13(3–4):335–340
82. Anpo M, Chiba K (1992) Photocatalytic reduction of CO 2 on anchored titanium oxide catalysts.
J Mol Catal 74(1–3):207–212
83. Yamashita H, Shiga A, Kawasaki S-i, Ichihashi Y, Ehara S, Anpo M (1995) Photocatalytic
synthesis of CH 4 and CH 3 OH from CO 2 and H 2 O on highly dispersed active titanium oxide
catalysts. Energy Convers Manag 36(6–9):617–620
84. Ikeue K, Yamashita H, Anpo M (1999) Photocatalytic reduction of CO 2 with H 2 O on titanium
oxides prepared within the FSM-16 mesoporous zeolite. Chem Lett 28(11):1135–1136
85. Ikeue K, Yamashita H, Anpo M, Takewaki T (2001) Photocatalytic reduction of CO 2 with H 2 O
on Ti-β zeolite photocatalysts: effect of the hydrophobic and hydrophilic properties. J Phys
Chem B 105(35):8350–8355
72
3 Titanium-Based Mesoporous Materials for Photocatalysis
hydrogen production from water using porous material [Ru 2 (p-BDC) 2 ] n . Energy Environ Sci 2
(4):397–400
68. Xiao J, Shang Q, Xiong Y, Zhang Q, Luo Y, Yu S, Jiang H (2016) Boosting photocatalytic
hydrogen production of a metal-organic framework decorated with platinum nanoparticles: the
platinum location matters. Angew Chem 128(32):9535–9539
69. Gomes Silva C, Luz I, Llabrés i, Xamena FX, Corma A, García H (2010) Water stable
Zr-benzenedicarboxylate metal-organic frameworks as photocatalysts for hydrogen generation.
Chem-Eur J 16(36):11133–11138
70. Fu Y, Sun D, Chen Y, Huang R, Ding Z, Fu X, Li Z (2012) An amine-functionalized titanium
metal-organic framework photocatalyst with visible-light-induced activity for CO 2 reduction.
Angew Chem 124(14):3420–3423
71. Alvaro M, Carbonell E, Ferrer B, Llabrés i, Xamena FX, Garcia H (2007) Semiconductor
behavior of a metal-organic framework (MOF). Chem-Eur J 13(18):5106–5112
72. Tachikawa T, Choi JR, Fujitsuka M, Majima T (2008) Photoinduced charge-transfer processes
on MOF-5 nanoparticles: elucidating differences between metal-organic frameworks and semiconductor metal oxides. J Phys Chem C 112(36):14090–14101
73. Yang H, He X, Wang F, Kang Y, Zhang J (2012) Doping copper into ZIF-67 for enhancing gas
uptake capacity and visible-light-driven photocatalytic degradation of organic dye. J Mater
Chem 22(41):21849–21851
74. Anpo M, Yamashita H, Ikeue K, Fujii Y, Zhang S, Ichihashi Y, Park DR, Suzuki Y, Koyano K,
Tatsumi T (1998) Photocatalytic reduction of CO 2 with H 2 O on Ti-MCM-41 and Ti-MCM-48
mesoporous zeolite catalysts. Catal Today 44(1–4):327–332
75. Takeuchi M, Dohshi S, Eura T, Anpo M (2003) Preparation of titanium-silicon binary oxide
thin film photocatalysts by an ionized cluster beam deposition method. Their photocatalytic
activity and photoinduced super-hydrophilicity. J Phys Chem B 107(51):14278–14282
76. Takeuchi M, Yamashita H, Matsuoka M, Anpo M, Hirao T, Itoh N, Iwamoto N (2000)
Photocatalytic decomposition of NO on titanium oxide thin film photocatalysts prepared by
an ionized cluster beam technique. Catal Lett 66(3):185–187
77. Anpo M, Aikawa N, Kubokawa Y, Che M, Louis C, Giamello E (1985) Photoluminescence and
photocatalytic activity of highly dispersed titanium oxide anchored onto porous Vycor glass. J
Phys Chem 89(23):5017–5021
78. Anpo M, Yamashita H, Ichihashi Y, Fujii Y, Honda M (1997) Photocatalytic reduction of CO 2
with H 2 O on titanium oxides anchored within micropores of zeolites: effects of the structure of
the active sites and the addition of Pt. J Phys Chem B 101(14):2632–2636
79. Anpo M (1997) In situ characterization of highly dispersed catalysts included within zeolite
cavities and their photocatalytic reactivities. Nouv Cim D 19(11):1641–1648
80. Yamashita H, Anpo M (2004) Application of an ion beam technique for the design of visible
light-sensitive, highly efficient and highly selective photocatalysts: ion-implantation and ionized cluster beam methods. Catal Surv Jpn 8(1):35–45
81. Hu Y, Rakhmawaty D, Matsuoka M, Takeuchi M, Anpo M (2006) Synthesis, characterization
and photocatalytic reactivity of Ti-containing micro- and mesoporous materials. J Porous Mater
13(3–4):335–340
82. Anpo M, Chiba K (1992) Photocatalytic reduction of CO 2 on anchored titanium oxide catalysts.
J Mol Catal 74(1–3):207–212
83. Yamashita H, Shiga A, Kawasaki S-i, Ichihashi Y, Ehara S, Anpo M (1995) Photocatalytic
synthesis of CH 4 and CH 3 OH from CO 2 and H 2 O on highly dispersed active titanium oxide
catalysts. Energy Convers Manag 36(6–9):617–620
84. Ikeue K, Yamashita H, Anpo M (1999) Photocatalytic reduction of CO 2 with H 2 O on titanium
oxides prepared within the FSM-16 mesoporous zeolite. Chem Lett 28(11):1135–1136
85. Ikeue K, Yamashita H, Anpo M, Takewaki T (2001) Photocatalytic reduction of CO 2 with H 2 O
on Ti-β zeolite photocatalysts: effect of the hydrophobic and hydrophilic properties. J Phys
Chem B 105(35):8350–8355
72
3 Titanium-Based Mesoporous Materials for Photocatalysis
