1 3
Topics in Current Chemistry (2019) 377:27
70. Fujishima A, Honda K (1972) Electrochemical photolysis of water at a semiconductor electrode.
Nature 238:37–38
71. Fujishima A, Zhang X (2006) Titanium dioxide photocatalysis: present situation and future
approaches. Comptes Rendus Chim 9:750–760
72. Kumaravel V, Mathew S, Bartlett J, Pillai SC (2019) Photocatalytic hydrogen production using
metal doped TiO 2 : a review of recent advances. Appl Catal B Environ 244:1021–1064
73. Ma D, Liu A, Li S et al (2018) TiO 2 photocatalysis for C–C bond formation. Catal Sci Technol
8:2030–2045
74. Fernández-Catalá J, Cazorla-Amorós D, Berenguer-Murcia Á (2018) Facile encapsulation of P25
(TiO 2 ) in spherical silica with hierarchical porosity with enhanced photocatalytic properties for
gas-phase propene oxidation. Appl Catal A Gen 564:123–132
75. Cano-Casanova L, Amorós-Pérez A, Ouzzine M et al (2018) One step hydrothermal synthesis of
TiO 2 with variable HCl concentration: detailed characterization and photocatalytic activity in propene oxidation. Appl Catal B Environ 220:645–653
76. Amorós-Pérez A, Cano-Casanova L, Lillo-Ródenas MÁ, Román-Martínez MC (2017) Cu/TiO 2
photocatalysts for the conversion of acetic acid into biogas and hydrogen. Catal Today 287:78–84
77. Song R, Luo B, Liu M et al (2017) Synergetic coupling of photo and thermal energy for efficient
hydrogen production by formic acid reforming. AIChE J 63:2916–2925
78. Liu P, Cai Z, You Y et al (2018) Surface modification on Pd–TiO 2 hybrid nanostructures
towards highly efficient H 2 production from catalytic formic acid decomposition. Chem A Eur J
24:18398–18402
79. Tsuji M, Shimamoto D, Uto K et al (2016) Enhancement of catalytic activity of AgPd@Pd/TiO 2
nanoparticles under UV and visible photoirradiation. J Mater Chem A 4:14649–14656
80. Zhang Z, Cao S, Liao Y, Xue C (2015) Selective photocatalytic decomposition of formic acid over
AuPd nanoparticle-decorated TiO 2 nanofibers toward high-yield hydrogen production. Appl Catal
B Environ 162:204–209
81. Wu M, Zhang M, Lv T et al (2017) The effect of calcination atmosphere upon the photocatalytic
performance of Au–La 2 O 3 /TiO 2 for hydrogen production from formic acid. Appl Catal A Gen
547:96–104
82. Clarizia L, Di Somma I, Marotta R, Minutolo P, Villamaina R, Andreozzi R (2016) Photocatalytic reforming of formic acid for hydrogen production in Aqueous solutions containing cupric
ions and TiO2 suspended nanoparticles under UV-simulated solar radiation. Appl Catal A Gen
518:181–188
83. Zhang Z, Liu K, Bao Y, Dong B (2017) Photo-assisted self-optimizing of charge-carriers transport
channel in the recrystallized multi-heterojunction nanofibers for highly efficient photocatalytic H 2
generation. Appl Catal B Environ 203:599–606
84. Li Q, Li X, Wageh S et al (2015) CdS/graphene nanocomposite photocatalysts. Adv Energy Mater
5:1500010
85. Tada H, Naya S-I, Fujishima M (2018) Water splitting by plasmonic photocatalysts with a gold
nanoparticle/cadmium sulfide heteroepitaxial junction: a mini review. Electrochem Commun
97:22–26
86. Willner I, Goren Z (1986) Photodecomposition of formic acid by cadmium sulphide semiconductor
particles. J Chem Soc Chem Commun 1986:172–173
87. Nedoluzhko AI, Shumilin IA, Nikandrov VV (1996) Coupled action of cadmium metal and hydrogenase in formate photodecomposition sensitized by CdS. J Phys Chem 100:17544–17550
88. Yeh HM, Lo SL, Chen MJ, Chen HY (2014) Hydrogen production from formic acid solution by
modified TiO 2 and titanate nanotubes in a two-step system under visible light irradiation. Water Sci
Technol 69:1676–1681
89. Chen H-Y, Lo S-L, Lai Y-C, Liou Y-H (2018) Titanate nanotubes coupled with Pt nanoparticles for
the inhibition of CdS photocorrosion during visible-light-driven hydrogen production from formic
acid. Mater Res Express 5:9
90. Wang X, Peng W-C, Li X-Y (2014) Photocatalytic hydrogen generation with simultaneous organic
degradation by composite CdS–ZnS nanoparticles under visible light. Int J Hydrogen Energy
39:13454–13461
91. Zeng M, Chai Z, Deng X et al (2016) Core–shell CdS@ZIF-8 structures for improved selectivity in
photocatalytic H 2 generation from formic acid. Nano Res 9:2729–2734
92. Zhang YJ, Zhang L (2009) Preparation of Ru-loaded CdS/Al-HMS nanocomposites and production of hydrogen by photocatalytic degradation of formic acid. Appl Surf Sci 255:4863–4866
221
Reprinted from the journal
Topics in Current Chemistry (2019) 377:27
70. Fujishima A, Honda K (1972) Electrochemical photolysis of water at a semiconductor electrode.
Nature 238:37–38
71. Fujishima A, Zhang X (2006) Titanium dioxide photocatalysis: present situation and future
approaches. Comptes Rendus Chim 9:750–760
72. Kumaravel V, Mathew S, Bartlett J, Pillai SC (2019) Photocatalytic hydrogen production using
metal doped TiO 2 : a review of recent advances. Appl Catal B Environ 244:1021–1064
73. Ma D, Liu A, Li S et al (2018) TiO 2 photocatalysis for C–C bond formation. Catal Sci Technol
8:2030–2045
74. Fernández-Catalá J, Cazorla-Amorós D, Berenguer-Murcia Á (2018) Facile encapsulation of P25
(TiO 2 ) in spherical silica with hierarchical porosity with enhanced photocatalytic properties for
gas-phase propene oxidation. Appl Catal A Gen 564:123–132
75. Cano-Casanova L, Amorós-Pérez A, Ouzzine M et al (2018) One step hydrothermal synthesis of
TiO 2 with variable HCl concentration: detailed characterization and photocatalytic activity in propene oxidation. Appl Catal B Environ 220:645–653
76. Amorós-Pérez A, Cano-Casanova L, Lillo-Ródenas MÁ, Román-Martínez MC (2017) Cu/TiO 2
photocatalysts for the conversion of acetic acid into biogas and hydrogen. Catal Today 287:78–84
77. Song R, Luo B, Liu M et al (2017) Synergetic coupling of photo and thermal energy for efficient
hydrogen production by formic acid reforming. AIChE J 63:2916–2925
78. Liu P, Cai Z, You Y et al (2018) Surface modification on Pd–TiO 2 hybrid nanostructures
towards highly efficient H 2 production from catalytic formic acid decomposition. Chem A Eur J
24:18398–18402
79. Tsuji M, Shimamoto D, Uto K et al (2016) Enhancement of catalytic activity of AgPd@Pd/TiO 2
nanoparticles under UV and visible photoirradiation. J Mater Chem A 4:14649–14656
80. Zhang Z, Cao S, Liao Y, Xue C (2015) Selective photocatalytic decomposition of formic acid over
AuPd nanoparticle-decorated TiO 2 nanofibers toward high-yield hydrogen production. Appl Catal
B Environ 162:204–209
81. Wu M, Zhang M, Lv T et al (2017) The effect of calcination atmosphere upon the photocatalytic
performance of Au–La 2 O 3 /TiO 2 for hydrogen production from formic acid. Appl Catal A Gen
547:96–104
82. Clarizia L, Di Somma I, Marotta R, Minutolo P, Villamaina R, Andreozzi R (2016) Photocatalytic reforming of formic acid for hydrogen production in Aqueous solutions containing cupric
ions and TiO2 suspended nanoparticles under UV-simulated solar radiation. Appl Catal A Gen
518:181–188
83. Zhang Z, Liu K, Bao Y, Dong B (2017) Photo-assisted self-optimizing of charge-carriers transport
channel in the recrystallized multi-heterojunction nanofibers for highly efficient photocatalytic H 2
generation. Appl Catal B Environ 203:599–606
84. Li Q, Li X, Wageh S et al (2015) CdS/graphene nanocomposite photocatalysts. Adv Energy Mater
5:1500010
85. Tada H, Naya S-I, Fujishima M (2018) Water splitting by plasmonic photocatalysts with a gold
nanoparticle/cadmium sulfide heteroepitaxial junction: a mini review. Electrochem Commun
97:22–26
86. Willner I, Goren Z (1986) Photodecomposition of formic acid by cadmium sulphide semiconductor
particles. J Chem Soc Chem Commun 1986:172–173
87. Nedoluzhko AI, Shumilin IA, Nikandrov VV (1996) Coupled action of cadmium metal and hydrogenase in formate photodecomposition sensitized by CdS. J Phys Chem 100:17544–17550
88. Yeh HM, Lo SL, Chen MJ, Chen HY (2014) Hydrogen production from formic acid solution by
modified TiO 2 and titanate nanotubes in a two-step system under visible light irradiation. Water Sci
Technol 69:1676–1681
89. Chen H-Y, Lo S-L, Lai Y-C, Liou Y-H (2018) Titanate nanotubes coupled with Pt nanoparticles for
the inhibition of CdS photocorrosion during visible-light-driven hydrogen production from formic
acid. Mater Res Express 5:9
90. Wang X, Peng W-C, Li X-Y (2014) Photocatalytic hydrogen generation with simultaneous organic
degradation by composite CdS–ZnS nanoparticles under visible light. Int J Hydrogen Energy
39:13454–13461
91. Zeng M, Chai Z, Deng X et al (2016) Core–shell CdS@ZIF-8 structures for improved selectivity in
photocatalytic H 2 generation from formic acid. Nano Res 9:2729–2734
92. Zhang YJ, Zhang L (2009) Preparation of Ru-loaded CdS/Al-HMS nanocomposites and production of hydrogen by photocatalytic degradation of formic acid. Appl Surf Sci 255:4863–4866
221
Reprinted from the journal
