possibilities of the materials and made detailed characterization possible. Taking the
advantages of the morphosyntheses, interfacial design and the developments of
fabrication techniques, some dye-clay systems have been prepared as thin films.
The application covers traditional pigments application to agriculture (on soil contamination), optical devices including light-emitting ones, sensors, photocatalysts,
etc. Though the practical application is not seen, various unique photoinduced
phenomena have been also ascribed.
Acknowledgments This work was supported by the Research Chair Grant 2017 (grant number
FDA-CO-2560-5655) from the National Science and Technology Development Agency (NSTDA),
Thailand.
References
1. Matsuura T, Anpo M (eds) (1989) Photochemistry on solid surfaces. Elsevier Science,
Amsterdam
2. Anpo M (ed) (1996) Surface photochemistry. Wiley, Chichester
3. Klafter J, Drake J (eds) (1989) Molecular dynamics in restricted geometries. Wiley
Interscience, New York
4. Ramamurthy V (ed) (1991) Photochemistry in organized and constrained media. VCH Publishers, New York
5. Ramamurthy V, Schanze KS (eds) (2000) Solid state and surface photochemistry. Marcel
Dekker, New York
6. Fendler JH (ed) (1994) Membrane-mimetic approach to advanced materials. Springer-Verlag,
Berlin
7. Yamaguchi T, Ogawa M (2019) Photochromic reactions in nanospace; host-guest interactions
and opportunity. In: Douhal A, Anpo M (eds) Chemistry of silica and zeolite-based materials
Synthesis, characterization and applications. Elsevier, Amsterdam, pp 163–177
8. Sohmiya M, Saito K, Ogawa M (2015) Host–guest chemistry of Mesoporous Silicas: precise
Design of Location, density and orientation of molecular guests in Mesopores. Sci Technol
Adv Mater 16:54201. https://doi.org/10.1088/1468-6996/16/5/054201
9. Ogawa M, Kuroda K (1995) Photofunctions of intercalation compounds. Chem Rev
95:399–438
10. Ogawa M, Saito K, Sohmiya M (2015) Possible roles of the spatial distribution of organic
guest species in mesoporous silicas to control the properties of the hybrids. Eur J Inorg
Chem:1126–1136. https://doi.org/10.1002/ejic.201402651
11. Ogawa M (2002) Photoprocesses in mesoporous silicas prepared by a supramolecular
templating approach. J Photochem Photobiol C: Photochem Rev 3:129–146. https://doi.org/
10.1016/S1389-5567(02)00023-0
12. Alberti G, Bein T (eds) (1996) Solid-state supramolecular chemistry: two- and threedimensional inorganic networks. Pergamon, Oxford
13. Thomas JK (1987) Characterization of surfaces by excited states. J Phys Chem 91:267–276.
https://doi.org/10.1021/j100286a008
14. Thomas JK (1993) Physical aspects of photochemistry and radiation chemistry of molecules
adsorbed on silica, gamma-alumina, zeolites, and clays. Chem Rev 93:301–320. https://doi.
org/10.1021/cr00017a014
15. Turro NJ, Grätzel M, Braun AM (1980) Photophysical and photochemical processes in
micellar systems. Angew Chem Int Ed 19:675–696. https://doi.org/10.1002/anie.198006751
Photofunctions of Dye-Clay Hybrids: Recent Developments
295
advantages of the morphosyntheses, interfacial design and the developments of
fabrication techniques, some dye-clay systems have been prepared as thin films.
The application covers traditional pigments application to agriculture (on soil contamination), optical devices including light-emitting ones, sensors, photocatalysts,
etc. Though the practical application is not seen, various unique photoinduced
phenomena have been also ascribed.
Acknowledgments This work was supported by the Research Chair Grant 2017 (grant number
FDA-CO-2560-5655) from the National Science and Technology Development Agency (NSTDA),
Thailand.
References
1. Matsuura T, Anpo M (eds) (1989) Photochemistry on solid surfaces. Elsevier Science,
Amsterdam
2. Anpo M (ed) (1996) Surface photochemistry. Wiley, Chichester
3. Klafter J, Drake J (eds) (1989) Molecular dynamics in restricted geometries. Wiley
Interscience, New York
4. Ramamurthy V (ed) (1991) Photochemistry in organized and constrained media. VCH Publishers, New York
5. Ramamurthy V, Schanze KS (eds) (2000) Solid state and surface photochemistry. Marcel
Dekker, New York
6. Fendler JH (ed) (1994) Membrane-mimetic approach to advanced materials. Springer-Verlag,
Berlin
7. Yamaguchi T, Ogawa M (2019) Photochromic reactions in nanospace; host-guest interactions
and opportunity. In: Douhal A, Anpo M (eds) Chemistry of silica and zeolite-based materials
Synthesis, characterization and applications. Elsevier, Amsterdam, pp 163–177
8. Sohmiya M, Saito K, Ogawa M (2015) Host–guest chemistry of Mesoporous Silicas: precise
Design of Location, density and orientation of molecular guests in Mesopores. Sci Technol
Adv Mater 16:54201. https://doi.org/10.1088/1468-6996/16/5/054201
9. Ogawa M, Kuroda K (1995) Photofunctions of intercalation compounds. Chem Rev
95:399–438
10. Ogawa M, Saito K, Sohmiya M (2015) Possible roles of the spatial distribution of organic
guest species in mesoporous silicas to control the properties of the hybrids. Eur J Inorg
Chem:1126–1136. https://doi.org/10.1002/ejic.201402651
11. Ogawa M (2002) Photoprocesses in mesoporous silicas prepared by a supramolecular
templating approach. J Photochem Photobiol C: Photochem Rev 3:129–146. https://doi.org/
10.1016/S1389-5567(02)00023-0
12. Alberti G, Bein T (eds) (1996) Solid-state supramolecular chemistry: two- and threedimensional inorganic networks. Pergamon, Oxford
13. Thomas JK (1987) Characterization of surfaces by excited states. J Phys Chem 91:267–276.
https://doi.org/10.1021/j100286a008
14. Thomas JK (1993) Physical aspects of photochemistry and radiation chemistry of molecules
adsorbed on silica, gamma-alumina, zeolites, and clays. Chem Rev 93:301–320. https://doi.
org/10.1021/cr00017a014
15. Turro NJ, Grätzel M, Braun AM (1980) Photophysical and photochemical processes in
micellar systems. Angew Chem Int Ed 19:675–696. https://doi.org/10.1002/anie.198006751
Photofunctions of Dye-Clay Hybrids: Recent Developments
295
