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84. Qin Y, Shi J, Gong X, Tian Z, Zhang P, Lu J (2016) A luminescent inorganic/organic
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201601087
85. Qin Y, Lu J, Li S, Li Z, Zheng S (2014) Phosphorescent sensor based on iridium complex/poly
(vinylcarbazole) orderly assembled with layered double hydroxide nanosheets:
two-dimensional föster resonance energy transfer and reversible luminescence response for
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86. Park CH, Lee S, Pornnoppadol G, Nam YS, Kim SH, Kim BJ (2018) Microcapsules
containing pH-responsive, fluorescent polymer-integrated MoS 2 : an effective platform for in
situ pH sensing and photothermal heating. ACS Appl Mater Interfaces 10(10):9023–9031.
https://doi.org/10.1021/acsami.7b19468
87. Arbeloa FL, Martinez V, Arbeloa T, Arbeloa IL (2010) Fluorescence anisotropy to study the
preferential orientation of fluorophores in ordered bi-dimensional systems: rhodamine
6G/laponite layered films. In: Geddes CD (ed) Reviews in fluorescence 2008. Reviews in
fluorescence, vol 5. Kluwer Academic, New York, pp 1–35. https://doi.org/10.1007/978-14419-1260-2_1
88. López Arbeloa F, Martínez Martínez V (2006) Orientation of adsorbed dyes in the interlayer
space of clays. 2 fluorescence polarization of rhodamine 6G in laponite films. Chem Mater 18
(6):1407–1416
89. Martinez VM, Arbeloa FL, Prieto JB, Arbeloa IL (2005) Orientation of adsorbed dyes in the
interlayer space of clays. 1. Anisotropy of Rhodamine 6G in Laponite films by Vis-absorption
with polarized light. Chem Mater 17(16):4134–4141. https://doi.org/10.1021/cm050728k
90. Iyi N, Sasai R, Fujita T, Deguchi T, Sota T, López Arbeloa F, Kitamura K (2002) Orientation
and aggregation of cationic laser dyes in a fluoromica: polarized spectrometry studies. Appl
Clay Sci 22(3):125–136
248
J. Bujdák
c2tc00533f
77. Chakraborty U, Singha T, Chianelli RR, Hansda C, Paul PK (2017) Organic-inorganic hybrid
layer-by-layer electrostatic self-assembled film of cationic dye Methylene Blue and a clay
mineral: spectroscopic and Atomic Force microscopic investigations. J Lumin 187:322–332.
https://doi.org/10.1016/j.jlumin.2017.03.039
78. Li Z, Liang R, Xu S, Liu W, Yan D, Wei M, Evans DG, Duan X (2016) Multi-dimensional,
light-controlled switch of fluorescence resonance energy transfer based on orderly assembly of
0D dye@micro-micelles and 2D ultrathin-layered nanosheets. Nano Res 9(12):3828–3838.
https://doi.org/10.1007/s12274-016-1252-1
79. Tozoni JR, Guimarães FEG, Atvars TDZ, Nowacki B, Marlleta A, Akcelrud L, Bonagamba TJ
(2011) De-aggregation of a polyfluorene derivative in clay nanocomposites: a photophysical
study. Eur Polym J 47(12):2259–2265. https://doi.org/10.1016/j.eurpolymj.2011.09.023
80. Vohra V, Calzaferri G, Destri S, Pasini M, Porzio W, Botta C (2010) Toward white light
emission through efficient two-step energy transfer in hybrid nanofibers. ACS Nano 4
(3):1409–1416. https://doi.org/10.1021/nn9017922
81. Olivero F, Carniato F, Bisio C, Marchese L (2014) Promotion of forster resonance energy
transfer in a saponite clay containing luminescent polyhedral oligomeric silsesquioxane and
rhodamine dye. Chem Asian J 9(1):158–165. https://doi.org/10.1002/asia.201300936
82. Aharon E, Albo A, Kalina M, Frey GL (2006) Stable blue emission from a polyfluorene/
layered-compound guest/host nanocomposite. Adv Funct Mater 16(7):980–986. https://doi.
org/10.1002/adfm.200500458
83. Li Z, Lu J, Li S, Qin S, Qin Y (2012) Orderly ultrathin films based on perylene/poly(N-vinyl
carbazole) assembled with layered double hydroxide nanosheets: 2d fluorescence resonance
energy transfer and reversible fluorescence response for volatile organic compounds. Adv
Mater 24(45):6053–6057. https://doi.org/10.1002/adma.201203040
84. Qin Y, Shi J, Gong X, Tian Z, Zhang P, Lu J (2016) A luminescent inorganic/organic
composite ultrathin film based on a 2D cascade FRET process and its potential VOC selective
sensing properties. Adv Funct Mater 26(37):6752–6759. https://doi.org/10.1002/adfm.
201601087
85. Qin Y, Lu J, Li S, Li Z, Zheng S (2014) Phosphorescent sensor based on iridium complex/poly
(vinylcarbazole) orderly assembled with layered double hydroxide nanosheets:
two-dimensional föster resonance energy transfer and reversible luminescence response for
VOCs. J Phys Chem C 118(35):20538–20544. https://doi.org/10.1021/jp505448d
86. Park CH, Lee S, Pornnoppadol G, Nam YS, Kim SH, Kim BJ (2018) Microcapsules
containing pH-responsive, fluorescent polymer-integrated MoS 2 : an effective platform for in
situ pH sensing and photothermal heating. ACS Appl Mater Interfaces 10(10):9023–9031.
https://doi.org/10.1021/acsami.7b19468
87. Arbeloa FL, Martinez V, Arbeloa T, Arbeloa IL (2010) Fluorescence anisotropy to study the
preferential orientation of fluorophores in ordered bi-dimensional systems: rhodamine
6G/laponite layered films. In: Geddes CD (ed) Reviews in fluorescence 2008. Reviews in
fluorescence, vol 5. Kluwer Academic, New York, pp 1–35. https://doi.org/10.1007/978-14419-1260-2_1
88. López Arbeloa F, Martínez Martínez V (2006) Orientation of adsorbed dyes in the interlayer
space of clays. 2 fluorescence polarization of rhodamine 6G in laponite films. Chem Mater 18
(6):1407–1416
89. Martinez VM, Arbeloa FL, Prieto JB, Arbeloa IL (2005) Orientation of adsorbed dyes in the
interlayer space of clays. 1. Anisotropy of Rhodamine 6G in Laponite films by Vis-absorption
with polarized light. Chem Mater 17(16):4134–4141. https://doi.org/10.1021/cm050728k
90. Iyi N, Sasai R, Fujita T, Deguchi T, Sota T, López Arbeloa F, Kitamura K (2002) Orientation
and aggregation of cationic laser dyes in a fluoromica: polarized spectrometry studies. Appl
Clay Sci 22(3):125–136
248
J. Bujdák
