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62. Takagi S, Aratake Y, Konno S, Masui D, Shimada T, Tachibana H, Inoue H (2011) Effects of
porphyrin structure on the complex formation behavior with clay. Microporous Mesoporous
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63. Egawa T, Watanabe H, Fujimura T, Ishida Y, Yamato M, Masui D, Shimada T, Tachibana H,
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65. Felbeck T, Mundinger S, Lezhnina MM, Staniford M, Resch-Genger U, Kynast UH (2015)
Multifold fluorescence enhancement in nanoscopic fluorophore-clay hybrids in transparent
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66. Roy AD, Saha J, Dey D, Bhattacharjee D, Hussain SA (2016) Influence of clay and DNA on
fluorescence resonance energy transfer between two laser dyes pyrene and acriflavine. Adv Sci
Lett 22(1):149–153. https://doi.org/10.1166/asl.2016.6810
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68. Tsukamoto T, Ramasamy E, Shimada T, Takagi S, Ramamurthy V (2016) Supramolecular
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5b03962
69. Devaux A, Calzaferri G, Belser P, Cao P, Brühwiler D, Kunzmann A (2014) Efficient and
robust host-guest antenna composite for light harvesting. Chem Mater 26(23):6878–6885.
https://doi.org/10.1021/cm503761q
70. Zhang Y, Chen Y, Li J, Liang L, Liu Y (2018) Construction and luminescent behavior of
supramolecular hydrogel with white-light emission. Acta Chim Sin 76(8):622–626. https://doi.
org/10.6023/A18040171
71. Sas S, Danko M, Bizovská V, Lang K, Bujdák J (2017) Highly luminescent hybrid materials
based on smectites with polyethylene glycol modified with rhodamine fluorophore. Appl Clay
Sci 138:25–33. https://doi.org/10.1016/j.clay.2016.12.034
72. Kuroda T, Fujii K, Sakoda K (2010) Ultrafast energy transfer in a multichromophoric layered
silicate. J Phys Chem C 114(2):983–989. https://doi.org/10.1021/jp910341f
73. Fujii K, Kuroda T, Sakoda K, Iyi N (2011) Fluorescence resonance energy transfer and
arrangements of fluorophores in integrated coumarin/cyanine systems within solid-state
two-dimensional nanospace. J Photochem Photobiol A 225(1):125–134. https://doi.org/10.
1016/j.jphotochem.2011.10.009
74. Kunz DA, Schmid J, Feicht P, Erath J, Fery A, Breu J (2013) Clay-based nanocomposite
coating for flexible optoelectronics applying commercial polymers. ACS Nano 7
(5):4275–4280. https://doi.org/10.1021/nn400713e
75. Lee TW, Park OO, Yoon J, Kim JJ (2001) Polymer-layered silicate nanocomposite lightemitting devices. Adv Mater 13(3):211–213. https://doi.org/10.1002/1521-4095(200102)
13:3<211::AID-ADMA211>3.0.CO;2-H
76. Leone G, Giovanella U, Bertini F, Porzio W, Meinardi F, Botta C, Ricci G (2013) Poly
(styrene)-graftÀ/rhodamine 6G-fluoromica hybrids: synthesis, characterization and
Resonance Energy Transfer in Hybrid Systems of Photoactive Dye Molecules and. . .
247
J-aggregates in polymer nanohybrids. Phys Chem Chem Phys 14(39):13646–13650. https://
doi.org/10.1039/c2cp42361h
61. Sonotani A, Shimada T, Takagi S (2017) “Size-matching effect” in a cationic porphyrin-titania
nanosheet complex. Chem Lett 46(4):499–501. https://doi.org/10.1246/cl.161146
62. Takagi S, Aratake Y, Konno S, Masui D, Shimada T, Tachibana H, Inoue H (2011) Effects of
porphyrin structure on the complex formation behavior with clay. Microporous Mesoporous
Mater 141(1-3):38–42. https://doi.org/10.1016/j.micromeso.2009.11.011
63. Egawa T, Watanabe H, Fujimura T, Ishida Y, Yamato M, Masui D, Shimada T, Tachibana H,
Yoshida H, Inoue H, Takagi S (2011) Novel methodology to control the adsorption structure
of cationic porphyrins on the clay surface using the “size-matching rule”. Langmuir 27
(17):10722–10729. https://doi.org/10.1021/la202231k
64. Czímerová A, Čeklovský A (2017) Resonance energy transfer between rhodamine dyes in
saponite thin films: a step towards novel photofunctional nanohybrids. Clay Miner 52
(2):263–273. https://doi.org/10.1180/claymin.2017.052.2.06
65. Felbeck T, Mundinger S, Lezhnina MM, Staniford M, Resch-Genger U, Kynast UH (2015)
Multifold fluorescence enhancement in nanoscopic fluorophore-clay hybrids in transparent
aqueous media. Chem Eur J 21(20):7582–7587. https://doi.org/10.1002/chem.201406416
66. Roy AD, Saha J, Dey D, Bhattacharjee D, Hussain SA (2016) Influence of clay and DNA on
fluorescence resonance energy transfer between two laser dyes pyrene and acriflavine. Adv Sci
Lett 22(1):149–153. https://doi.org/10.1166/asl.2016.6810
67. Ishida Y, Kulasekharan R, Shimada T, Ramamurthy V, Takagi S (2014) Supramolecularsurface photochemistry: supramolecular assembly organized on a clay surface facilitates
energy transfer between an encapsulated donor and a free acceptor. J Phys Chem C 118
(19):10198–10203. https://doi.org/10.1021/jp502816j
68. Tsukamoto T, Ramasamy E, Shimada T, Takagi S, Ramamurthy V (2016) Supramolecular
surface photochemistry: cascade energy transfer between encapsulated dyes aligned on a clay
nanosheet surface. Langmuir 32(12):2920–2927. https://doi.org/10.1021/acs.langmuir.
5b03962
69. Devaux A, Calzaferri G, Belser P, Cao P, Brühwiler D, Kunzmann A (2014) Efficient and
robust host-guest antenna composite for light harvesting. Chem Mater 26(23):6878–6885.
https://doi.org/10.1021/cm503761q
70. Zhang Y, Chen Y, Li J, Liang L, Liu Y (2018) Construction and luminescent behavior of
supramolecular hydrogel with white-light emission. Acta Chim Sin 76(8):622–626. https://doi.
org/10.6023/A18040171
71. Sas S, Danko M, Bizovská V, Lang K, Bujdák J (2017) Highly luminescent hybrid materials
based on smectites with polyethylene glycol modified with rhodamine fluorophore. Appl Clay
Sci 138:25–33. https://doi.org/10.1016/j.clay.2016.12.034
72. Kuroda T, Fujii K, Sakoda K (2010) Ultrafast energy transfer in a multichromophoric layered
silicate. J Phys Chem C 114(2):983–989. https://doi.org/10.1021/jp910341f
73. Fujii K, Kuroda T, Sakoda K, Iyi N (2011) Fluorescence resonance energy transfer and
arrangements of fluorophores in integrated coumarin/cyanine systems within solid-state
two-dimensional nanospace. J Photochem Photobiol A 225(1):125–134. https://doi.org/10.
1016/j.jphotochem.2011.10.009
74. Kunz DA, Schmid J, Feicht P, Erath J, Fery A, Breu J (2013) Clay-based nanocomposite
coating for flexible optoelectronics applying commercial polymers. ACS Nano 7
(5):4275–4280. https://doi.org/10.1021/nn400713e
75. Lee TW, Park OO, Yoon J, Kim JJ (2001) Polymer-layered silicate nanocomposite lightemitting devices. Adv Mater 13(3):211–213. https://doi.org/10.1002/1521-4095(200102)
13:3<211::AID-ADMA211>3.0.CO;2-H
76. Leone G, Giovanella U, Bertini F, Porzio W, Meinardi F, Botta C, Ricci G (2013) Poly
(styrene)-graftÀ/rhodamine 6G-fluoromica hybrids: synthesis, characterization and
Resonance Energy Transfer in Hybrid Systems of Photoactive Dye Molecules and. . .
247
