1 3
Topics in Current Chemistry (2020) 378:3
utilization, enabling the development of more sustainable and efficient photocatalytic processes.
Acknowledgements Rafael Luque gratefully acknowledges MINECO for funding project CTQ201678289-P, co-financed with FEDER funds. Daily Rodriguez-Padron also gratefully acknowledges
MINECO for providing a research contract under the same project. M. J. Muñoz-Batista thanks the
“Plan Propio de Investigación-Proyectos de investigación precompetitivos para Jóvenes Investigadores” from Universidad de Granada and MINECO for a Juan de la Cierva postdoctoral contract (ref.
FJCI-2016-29014). This publication was prepared with support from RUDN University, Program 5-100.
References
1. Anastas PT, Warner JC (1998) Green chemistry : theory and practice. Oxford University Press,
Oxford
2. Sheldon RA (2012) Fundamentals of green chemistry: efficiency in reaction design. Chem Soc Rev
41:1437–1451. https ://doi.org/10.1039/C1CS1 5219J
3. Rodríguez-Padrón D, Puente-Santiago AR, Balu AM et al (2019) Environmental catalysis: present
and future. ChemCatChem 11:18–38. https ://doi.org/10.1002/cctc.20180 1248
4. Spasiano D, Marotta R, Malato S et al (2015) Solar photocatalysis: materials, reactors, some
commercial, and pre-industrialized applications. A comprehensive approach. Appl Catal B Environ 171:90–123. https ://doi.org/10.1016/j.apcat b.2014.12.050
5. Kubacka A, Fernández-García M, Colón G (2012) Advanced nanoarchitectures for solar photocatalytic applications. Chem Rev 112:1555–1614. https ://doi.org/10.1021/cr100 454n
6. Colmenares JC, Luque R (2014) Heterogeneous photocatalytic nanomaterials: prospects and
challenges in selective transformations of biomass-derived compounds. Chem Soc Rev 43:765–
778. https ://doi.org/10.1039/C3CS6 0262A
7. Hoffmann MR, Martin ST, Choi W, Bahnemannt DW (1995) Environmental applications of semiconductor photocatalysis. Chem Rev 95:69–96. https ://doi.org/10.1021/cr000 33a00 4
8. Ravelli D, Dondi D, Fagnoni M, Albini A (2009) Photocatalysis. A multi-faceted concept for
green chemistry. Chem Soc Rev 38:1999–2011. https ://doi.org/10.1039/b7147 86b
9. Linsebigler AL, Lu G, Yates JT (1995) Photocatalysis on TiO2 surfaces: principles, mechanisms,
and selected results. Chem Rev 95:735–758. https ://doi.org/10.1021/cr000 35a01 3
10. Granone LI, Sieland F, Zheng N et al (2018) Photocatalytic conversion of biomass into valuable
products: a meaningful approach? Green Chem 20:1169–1192. https ://doi.org/10.1039/C7GC0
3522E
11. Chen X, Mao SS (2007) Titanium dioxide nanomaterials: synthesis, properties, modifications,
and applications. Chem Rev 107:2891–2959. https ://doi.org/10.1021/cr050 0535
12. Muñoz-Batista MJ, Ballari MM, Kubacka A et al (2019) Braiding kinetics and spectroscopy in photo-catalysis: the spectro-kinetic approach. Chem Soc Rev 48:637–682. https ://doi.
org/10.1039/C8CS0 0108A
13. Caudillo-Flores U, Muñoz-Batista MJ, Kubacka A, Fernández-García M (2018) Operando spectroscopy in photocatalysis. ChemPhotoChem 2:777–785. https ://doi.org/10.1002/cptc.20180
0117
14. Colmenares JC, Varma RS, Nair V (2017) Selective photocatalysis of lignin-inspired chemicals
by integrating hybrid nanocatalysis in microfluidic reactors. Chem Soc Rev 46:6675–6686. https
://doi.org/10.1039/C7CS0 0257B
15. Liu J, Liu Y, Liu N et al (2015) Water splitting. Metal-free efficient photocatalyst for stable visible water splitting via a two-electron pathway. Science 347:970–974. https ://doi.org/10.1126/
scien ce.aaa31 45
16. Sasaki Y, Nemoto H, Saito K, Kudo A (2009) Solar water splitting using powdered photocatalysts driven by Z-schematic interparticle electron transfer without an electron mediator. J Phys
Chem C 113:17536–17542. https ://doi.org/10.1021/jp907 128k
23
Reprinted from the journal
Topics in Current Chemistry (2020) 378:3
utilization, enabling the development of more sustainable and efficient photocatalytic processes.
Acknowledgements Rafael Luque gratefully acknowledges MINECO for funding project CTQ201678289-P, co-financed with FEDER funds. Daily Rodriguez-Padron also gratefully acknowledges
MINECO for providing a research contract under the same project. M. J. Muñoz-Batista thanks the
“Plan Propio de Investigación-Proyectos de investigación precompetitivos para Jóvenes Investigadores” from Universidad de Granada and MINECO for a Juan de la Cierva postdoctoral contract (ref.
FJCI-2016-29014). This publication was prepared with support from RUDN University, Program 5-100.
References
1. Anastas PT, Warner JC (1998) Green chemistry : theory and practice. Oxford University Press,
Oxford
2. Sheldon RA (2012) Fundamentals of green chemistry: efficiency in reaction design. Chem Soc Rev
41:1437–1451. https ://doi.org/10.1039/C1CS1 5219J
3. Rodríguez-Padrón D, Puente-Santiago AR, Balu AM et al (2019) Environmental catalysis: present
and future. ChemCatChem 11:18–38. https ://doi.org/10.1002/cctc.20180 1248
4. Spasiano D, Marotta R, Malato S et al (2015) Solar photocatalysis: materials, reactors, some
commercial, and pre-industrialized applications. A comprehensive approach. Appl Catal B Environ 171:90–123. https ://doi.org/10.1016/j.apcat b.2014.12.050
5. Kubacka A, Fernández-García M, Colón G (2012) Advanced nanoarchitectures for solar photocatalytic applications. Chem Rev 112:1555–1614. https ://doi.org/10.1021/cr100 454n
6. Colmenares JC, Luque R (2014) Heterogeneous photocatalytic nanomaterials: prospects and
challenges in selective transformations of biomass-derived compounds. Chem Soc Rev 43:765–
778. https ://doi.org/10.1039/C3CS6 0262A
7. Hoffmann MR, Martin ST, Choi W, Bahnemannt DW (1995) Environmental applications of semiconductor photocatalysis. Chem Rev 95:69–96. https ://doi.org/10.1021/cr000 33a00 4
8. Ravelli D, Dondi D, Fagnoni M, Albini A (2009) Photocatalysis. A multi-faceted concept for
green chemistry. Chem Soc Rev 38:1999–2011. https ://doi.org/10.1039/b7147 86b
9. Linsebigler AL, Lu G, Yates JT (1995) Photocatalysis on TiO2 surfaces: principles, mechanisms,
and selected results. Chem Rev 95:735–758. https ://doi.org/10.1021/cr000 35a01 3
10. Granone LI, Sieland F, Zheng N et al (2018) Photocatalytic conversion of biomass into valuable
products: a meaningful approach? Green Chem 20:1169–1192. https ://doi.org/10.1039/C7GC0
3522E
11. Chen X, Mao SS (2007) Titanium dioxide nanomaterials: synthesis, properties, modifications,
and applications. Chem Rev 107:2891–2959. https ://doi.org/10.1021/cr050 0535
12. Muñoz-Batista MJ, Ballari MM, Kubacka A et al (2019) Braiding kinetics and spectroscopy in photo-catalysis: the spectro-kinetic approach. Chem Soc Rev 48:637–682. https ://doi.
org/10.1039/C8CS0 0108A
13. Caudillo-Flores U, Muñoz-Batista MJ, Kubacka A, Fernández-García M (2018) Operando spectroscopy in photocatalysis. ChemPhotoChem 2:777–785. https ://doi.org/10.1002/cptc.20180
0117
14. Colmenares JC, Varma RS, Nair V (2017) Selective photocatalysis of lignin-inspired chemicals
by integrating hybrid nanocatalysis in microfluidic reactors. Chem Soc Rev 46:6675–6686. https
://doi.org/10.1039/C7CS0 0257B
15. Liu J, Liu Y, Liu N et al (2015) Water splitting. Metal-free efficient photocatalyst for stable visible water splitting via a two-electron pathway. Science 347:970–974. https ://doi.org/10.1126/
scien ce.aaa31 45
16. Sasaki Y, Nemoto H, Saito K, Kudo A (2009) Solar water splitting using powdered photocatalysts driven by Z-schematic interparticle electron transfer without an electron mediator. J Phys
Chem C 113:17536–17542. https ://doi.org/10.1021/jp907 128k
23
Reprinted from the journal
