Topics in Current Chemistry (2019) 377:27
1 3
46. Mori K, Sano T, Kobayashi H, Yamashita H (2018) Surface engineering of a supported PdAg catalyst for hydrogenation of CO 2 to formic acid: elucidating the active Pd atoms in alloy nanoparticles. J Am Chem Soc 140:8902–8909
47. Salinas-Torres D, Navlani-García M, Mori K et  al (2019) Nitrogen-doped carbon materials as a
promising platform toward the efficient catalysis for hydrogen generation. Appl Catal A Gen
571:25–41
48. Navlani-García M, Martis M, Lozano-Castelló D et  al (2015) Investigation of Pd nanoparticles
supported on zeolites for hydrogen production from formic acid dehydrogenation. Catal Sci Technol 5:364–371
49. Navlani-García M, Salinas-Torres D, Mori K et al (2019) Insights on palladium decorated nitrogendoped carbon xerogels for the hydrogen production from formic acid. Catal Today 324:90–96
50. Wu Y, Wen M, Navlani-García M et  al (2017) Palladium nanoparticles supported on titanium
doped graphitic carbon nitride for formic acid dehydrogenation. Chem Asian J 12:860–867
51. Navlani-García M, Miguel-García I, Berenguer-Murcia Á et  al (2016) Pd/zeolite-based catalysts
for the preferential CO oxidation reaction: ion-exchange, Si/Al and structure effect. Catal Sci Technol 6:2623–2632
52. Zhang S, Li M, Zhao J et al (2019) Plasmonic AuPd-based Mott–Schottky photocatalyst for synergistically enhanced hydrogen evolution from formic acid and aldehyde. Appl Catal B Environ
252:24–32
53. Kim JH, Hansora D, Sharma P et al (2019) Toward practical solar hydrogen production—an artificial photosynthetic leaf-to-farm challenge. Chem Soc Rev 48:1908–1971
54. Takata T, Domen K (2019) Particulate photocatalysts for water splitting: recent advances and
future prospects. ACS Energy Lett 4:542–549
55. Murdoch, Waterhouse, Nadeem et al (2010) Photocatalytic hydrogen production from ethanol over
Au/TiO 2 anatase and rutile nanoparticles: effect of Au particle size. ACS Natl Meet B Abstr 3:1
56. Gallo A, Marelli M, Psaro R et al (2012) Bimetallic Au–Pt/TiO 2 photocatalysts active under UV-A
and simulated sunlight for H 2 production from ethanol. Green Chem 14:330–333
57. Wu N-L, Lee M-S (2004) Enhanced TiO 2 photocatalysis by Cu in hydrogen production from aqueous methanol solution. Int J Hydrogen Energy 29:1601–1605
58. Jing D, Guo L (2007) Hydrogen production over Fe-doped tantalum oxide from an aqueous methanol solution under the light irradiation. J Phys Chem Solids 68:2363–2369
59. Montini T, Monai M, Beltram A et al (2016) H 2 production by photocatalytic reforming of oxygenated compounds using TiO 2 -based materials. Mater Sci Semicond Process 42:122–130
60. de Oliveira Melo M, Silva LA (2011) Visible light-induced hydrogen production from glycerol aqueous solution on hybrid Pt–CdS–TiO 2 photocatalysts. J Photochem Photobiol A Chem
226:36–41
61. Jana MK, Gupta U, Rao CNR (2016) Hydrazine as a hydrogen carrier in the photocatalytic generation of H2 using CdS quantum dots. Dalt Trans 45:15137–15141
62. Yuzawa H, Mori T, Itoh H, Yoshida H (2012) Reaction mechanism of ammonia decomposition to nitrogen and hydrogen over metal loaded titanium oxide photocatalyst. J Phys Chem C
116:4126–4136
63. Reli M, Ambrožová N, Šihor M et al (2015) Novel cerium doped titania catalysts for photocatalytic
decomposition of ammonia. Appl Catal B Environ 178:108–116
64. Liu P-H, Wen M, Tan C-S et al (2017) Surface plasmon resonance enhancement of production of
H 2 from ammonia borane solution with tunable Cu 2 − x S nanowires decorated by Pd nanoparticles.
Nano Energy 31:57–63
65. Verma P, Yuan K, Kuwahara Y et al (2018) Enhancement of plasmonic activity by Pt/Ag bimetallic nanocatalyst supported on mesoporous silica in the hydrogen production from hydrogen storage
material. Appl Catal B Environ 223:10–15
66. Ji Y, Luo Y (2016) Structure-dependent photocatalytic decomposition of formic acid on the anatase
TiO 2 (101) surface and strategies to increase its reaction rate. J Power Sources 306:208–212
67. Civiš S, Ferus M, Zukalová M et al (2012) Photochemistry and gas-phase FTIR spectroscopy of
formic acid interaction with anatase Ti 18 O 2 nanoparticles. J Phys Chem C 116:11200–11205
68. Liu S, Yu J, Jaroniec M (2011) Anatase TiO 2 with dominant high-energy 001 facets: synthesis,
properties, and applications. Chem Mater 23:4085–4093
69. Roy P, Berger S, Schmuki P (2011) TiO 2 nanotubes: synthesis and applications. Angew Chem Int
Ed 50:2904–2939
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