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52. Chen C, Ma W, Zhao J (2010) Semiconductor-mediated photodegradation of pollutants under
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53. Aguado J, van Grieken R, López-Muñoz MJ, Marugán J (2002) Removal of cyanides in
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55. Horiuchi Y, Toyao T, Takeuchi M, Matsuoka M, Anpo M (2013) Recent advances in visiblelight-responsive photocatalysts for hydrogen production and solar energy conversion-from
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(32):13243–13253
56. Niphadkar PS, Chitale SK, Sonar SK, Deshpande SS, Joshi PN, Awate SV (2014) Synthesis,
characterization and photocatalytic behavior of TiO 2 -SiO 2 mesoporous composites in hydrogen
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57. Xing M, Zhang J, Qiu B, Tian B, Anpo M, Che M (2014) A brown mesoporous TiO 2Àx /MCF
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and the design of new materials. Nature 423(6941):705–714
60. Kitagawa S, Kitaura R, Si N (2004) Functional porous coordination polymers. Angew Chem Int
Ed 43(18):2334–2375
61. Moulton B, Zaworotko MJ (2001) From molecules to crystal engineering: supramolecular
isomerism and polymorphism in network solids. Chem Rev 101(6):1629–1658
62. Seo JS, Whang D, Lee H, Im Jun S, Oh J, Jeon YJ, Kim K (2000) A homochiral metal-organic
porous material for enantioselective separation and catalysis. Nature 404(6781):982–986
63. Zhou T, Du Y, Borgna A, Hong J, Wang Y, Han J, Zhang W, Xu R (2013) Post-synthesis
modification of a metal-organic framework to construct a bifunctional photocatalyst for hydrogen production. Energy Environ Sci 6(11):3229–3234
64. Horiuchi Y, Toyao T, Saito M, Mochizuki K, Iwata M, Higashimura H, Anpo M, Matsuoka M
(2012) Visible-light-promoted photocatalytic hydrogen production by using an aminofunctionalized Ti (IV) metal-organic framework. J Phys Chem C 116(39):20848–20853
65. Wang C, DeKrafft KE, Lin W (2012) Pt nanoparticles@photoactive metal-organic frameworks:
efficient hydrogen evolution via synergistic photoexcitation and electron injection. J Am Chem
Soc 134(17):7211–7214
66. Fateeva A, Chater PA, Ireland CP, Tahir AA, Khimyak YZ, Wiper PV, Darwent JR, Rosseinsky
MJ (2012) A water-stable porphyrin-based metal-organic framework active for visible-light
photocatalysis. Angew Chem 124(30):7558–7562
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effective catalyst for Suzuki reaction. J Ind Eng Chem 16(2):220–223
47. Mei F, Liu C, Zhang L, Ren F, Zhou L, Zhao W, Fang Y (2006) Microstructural study of binary
TiO 2 :SiO 2 nanocrystalline thin films. J Cryst Growth 292(1):87–91
48. Siddiquey IA, Furusawa T, Sato M, Honda K, Suzuki N (2008) Control of the photocatalytic
activity of TiO 2 nanoparticles by silica coating with polydiethoxysiloxane. Dyes Pigments 76
(3):754–759
49. Li D (2004) Study on the fluorescence properties of benzopyrylium salt in Ti-HMS. Dyes
Pigments 63(1):71–76
50. Zhao W, Li D, He B, Zhang J, Huang J, Zhang L (2005) The photoluminescence of coumarin
derivative encapsulated in MCM-41 and Ti-MCM-41. Dyes Pigments 64(3):265–270
51. He C, Tian B, Zhang J (2009) Synthesis of thermally stable and highly ordered bicontinuous
cubic mesoporous titania-silica binary oxides with crystalline framework. Microporous
Mesoporous Mater 126(1–2):50–57
52. Chen C, Ma W, Zhao J (2010) Semiconductor-mediated photodegradation of pollutants under
visible-light irradiation. Chem Soc Rev 39(11):4206–4219
53. Aguado J, van Grieken R, López-Muñoz MJ, Marugán J (2002) Removal of cyanides in
wastewater by supported TiO 2 -based photocatalysts. Catal Today 75(1–4):95–102
54. Fujishima A, Honda K (1972) Electrochemical photolysis of water at a semiconductor
electrode. Nature 238(5358):37–38
55. Horiuchi Y, Toyao T, Takeuchi M, Matsuoka M, Anpo M (2013) Recent advances in visiblelight-responsive photocatalysts for hydrogen production and solar energy conversion-from
semiconducting TiO 2 to MOF/PCP photocatalysts. Phys Chem Chem Phys 15
(32):13243–13253
56. Niphadkar PS, Chitale SK, Sonar SK, Deshpande SS, Joshi PN, Awate SV (2014) Synthesis,
characterization and photocatalytic behavior of TiO 2 -SiO 2 mesoporous composites in hydrogen
generation from water splitting. J Mater Sci 49(18):6383–6391
57. Xing M, Zhang J, Qiu B, Tian B, Anpo M, Che M (2014) A brown mesoporous TiO 2Àx /MCF
composite with an extremely high quantum yield of solar energy photocatalysis for H 2 evolution. Small 11(16):1920–1929
58. Hill RJ, Long DL, Champness NR, Hubberstey P, Schröder M (2005) New approaches to the
analysis of high connectivity materials: design frameworks based upon 44- and 63-subnet
tectons. Acc Chem Res 38(4):335–348
59. Yaghi OM, O’keeffe M, Ockwig NW, Chae HK, Eddaoudi M, Kim J (2003) Reticular synthesis
and the design of new materials. Nature 423(6941):705–714
60. Kitagawa S, Kitaura R, Si N (2004) Functional porous coordination polymers. Angew Chem Int
Ed 43(18):2334–2375
61. Moulton B, Zaworotko MJ (2001) From molecules to crystal engineering: supramolecular
isomerism and polymorphism in network solids. Chem Rev 101(6):1629–1658
62. Seo JS, Whang D, Lee H, Im Jun S, Oh J, Jeon YJ, Kim K (2000) A homochiral metal-organic
porous material for enantioselective separation and catalysis. Nature 404(6781):982–986
63. Zhou T, Du Y, Borgna A, Hong J, Wang Y, Han J, Zhang W, Xu R (2013) Post-synthesis
modification of a metal-organic framework to construct a bifunctional photocatalyst for hydrogen production. Energy Environ Sci 6(11):3229–3234
64. Horiuchi Y, Toyao T, Saito M, Mochizuki K, Iwata M, Higashimura H, Anpo M, Matsuoka M
(2012) Visible-light-promoted photocatalytic hydrogen production by using an aminofunctionalized Ti (IV) metal-organic framework. J Phys Chem C 116(39):20848–20853
65. Wang C, DeKrafft KE, Lin W (2012) Pt nanoparticles@photoactive metal-organic frameworks:
efficient hydrogen evolution via synergistic photoexcitation and electron injection. J Am Chem
Soc 134(17):7211–7214
66. Fateeva A, Chater PA, Ireland CP, Tahir AA, Khimyak YZ, Wiper PV, Darwent JR, Rosseinsky
MJ (2012) A water-stable porphyrin-based metal-organic framework active for visible-light
photocatalysis. Angew Chem 124(30):7558–7562
References
71
