222. Ogawa M, Handa T, Kuroda K, Kato C, Tani T (1992) Photochemical hole burning of
1,4-dihydroxyanthraquinone intercalated in a pillered layered clay mineral. J Phys Chem
96:8116–8119
223. Ferreira AUC, Poli AL, Gessner F, Neumann MG, Schmitt Cavalheiro CC (2013) Interaction
of auramine O with montmorillonite clays. J Lumin 136:63–67. https://doi.org/10.1016/j.
jlumin.2012.11.022
224. Tsukamoto T, Shimada T, Takagi S (2013) Unique photochemical properties of p-substituted
cationic triphenylbenzene derivatives on a clay layer surface. J Phys Chem C 117:2774–2779.
https://doi.org/10.1021/jp3092144
225. Tsukamoto T, Shimada T, Takagi S (2013) Photochemical properties of mono-, tri-, and pentacationic antimony(V) metalloporphyrin derivatives on a clay layer surface. J Phys Chem A
117:7823–7832. https://doi.org/10.1021/jp405767s
226. Tsukamoto T, Shimada T, Takagi S (2015) Structure resembling effect of clay surface on
photochemical properties of meso-phenyl or pyridyl-substituted monocationic antimony
(V) porphyrin derivatives. RSC Adv 5:8479–8485. https://doi.org/10.1039/C4RA15650A
227. Villemure G, Detellier C, Szabo AG (1986) Fluorescence of clay-intercalated methylviologen.
J Am Chem Soc 108:4658–4659. https://doi.org/10.1021/ja00275a071
228. Miyata H, Sugahara Y, Kuroda K, Kato C (1987) Synthesis of montmorillonite-viologen
intercalation compounds and their photochromic behaviour. J Chem Soc Faraday Trans
1 83:1851–1858. https://doi.org/10.1039/F19878301851
229. Raupach M, Emerson WW, Slade PG (1979) The arrangement of paraquat bound by vermiculite and montmorillonite. J Colloid Interface Sci 69:398–408. https://doi.org/10.1016/00219797(79)90129-2
230. Hayes MHB, Pick ME, Toms BA (1978) The influence of organocation structure on the
adsorption of mono- and of bipyridinium cations by expanding lattice clay minerals. J Colloid
Interface Sci 65:254–265. https://doi.org/10.1016/0021-9797(78)90156-X
231. Villemure G, Detellier C, Szabo AG (1991) Fluorescence of methylviologen intercalated into
montmorillonite and hectorite aqueous suspensions. Langmuir 7:1215–1221. https://doi.org/
10.1021/la00054a032
232. Okada T, Ogawa M (2003) 1,1
0 -dimethyl-4,4
0 -bipyridinium-smectites as a novel adsorbent of
phenols from water through charge-transfer interactions. Chem Commun:1378–1379. https://
doi.org/10.1039/b302144k
233. Kakegawa N, Kondo T, Ogawa M (2003) Variation of electron-donating ability of smectites as
probed by photoreduction of methyl viologen. Langmuir 19:3578–3582. https://doi.org/10.
1021/la020763v
234. Miyata H, Sugahara Y, Kuroda K, Kato C (1988) Synthesis of a viologen-tetratitanate
intercalation compound and its photochemical behaviour. J Chem Soc Faraday Trans
84:2677–2682. https://doi.org/10.1039/F19888402677
235. Nakato T, Kuroda K, Kato C (1989) Photoreduction of methylviologen in the interlayer of
K 4 Nb 6 O 17 . J Chem Soc Chem Commun 1144. https://doi.org/10.1039/c39890001144
236. Nakato T, Kuroda K, Kato C (1992) Syntheses of intercalation compounds of layered niobates
with methylviologen and their photochemical behavior. Chem Mater 4:128–132. https://doi.
org/10.1021/cm00019a027
237. Nakato T, Ito K, Kuroda K, Kato C (1993) Photochemical behavior of perovskite-related
layered niobates HA 2 Nb 3 O 10 (a ¼ Ca, Sr) intercalated with methylviologen. Microporous
Mater 1:283–286. https://doi.org/10.1016/0927-6513(93)80071-2
238. Nakato T, Miyata H, Kuroda K, Kato C (1988) Synthesis of methylviologen-HTiNbO 5
intercalation compound and its photochemical behavior. React Solids 6:231–238. https://doi.
org/10.1016/0168-7336(88)80063-9
239. Vermeulen LA, Snover JL, Sapochak LS, Thompson ME (1993) Efficient photoinduced
charge separation in layered zirconium viologen phosphonate compounds. J Am Chem Soc
115:11767–11774. https://doi.org/10.1021/ja00078a015
Photofunctions of Dye-Clay Hybrids: Recent Developments
307
1,4-dihydroxyanthraquinone intercalated in a pillered layered clay mineral. J Phys Chem
96:8116–8119
223. Ferreira AUC, Poli AL, Gessner F, Neumann MG, Schmitt Cavalheiro CC (2013) Interaction
of auramine O with montmorillonite clays. J Lumin 136:63–67. https://doi.org/10.1016/j.
jlumin.2012.11.022
224. Tsukamoto T, Shimada T, Takagi S (2013) Unique photochemical properties of p-substituted
cationic triphenylbenzene derivatives on a clay layer surface. J Phys Chem C 117:2774–2779.
https://doi.org/10.1021/jp3092144
225. Tsukamoto T, Shimada T, Takagi S (2013) Photochemical properties of mono-, tri-, and pentacationic antimony(V) metalloporphyrin derivatives on a clay layer surface. J Phys Chem A
117:7823–7832. https://doi.org/10.1021/jp405767s
226. Tsukamoto T, Shimada T, Takagi S (2015) Structure resembling effect of clay surface on
photochemical properties of meso-phenyl or pyridyl-substituted monocationic antimony
(V) porphyrin derivatives. RSC Adv 5:8479–8485. https://doi.org/10.1039/C4RA15650A
227. Villemure G, Detellier C, Szabo AG (1986) Fluorescence of clay-intercalated methylviologen.
J Am Chem Soc 108:4658–4659. https://doi.org/10.1021/ja00275a071
228. Miyata H, Sugahara Y, Kuroda K, Kato C (1987) Synthesis of montmorillonite-viologen
intercalation compounds and their photochromic behaviour. J Chem Soc Faraday Trans
1 83:1851–1858. https://doi.org/10.1039/F19878301851
229. Raupach M, Emerson WW, Slade PG (1979) The arrangement of paraquat bound by vermiculite and montmorillonite. J Colloid Interface Sci 69:398–408. https://doi.org/10.1016/00219797(79)90129-2
230. Hayes MHB, Pick ME, Toms BA (1978) The influence of organocation structure on the
adsorption of mono- and of bipyridinium cations by expanding lattice clay minerals. J Colloid
Interface Sci 65:254–265. https://doi.org/10.1016/0021-9797(78)90156-X
231. Villemure G, Detellier C, Szabo AG (1991) Fluorescence of methylviologen intercalated into
montmorillonite and hectorite aqueous suspensions. Langmuir 7:1215–1221. https://doi.org/
10.1021/la00054a032
232. Okada T, Ogawa M (2003) 1,1
0 -dimethyl-4,4
0 -bipyridinium-smectites as a novel adsorbent of
phenols from water through charge-transfer interactions. Chem Commun:1378–1379. https://
doi.org/10.1039/b302144k
233. Kakegawa N, Kondo T, Ogawa M (2003) Variation of electron-donating ability of smectites as
probed by photoreduction of methyl viologen. Langmuir 19:3578–3582. https://doi.org/10.
1021/la020763v
234. Miyata H, Sugahara Y, Kuroda K, Kato C (1988) Synthesis of a viologen-tetratitanate
intercalation compound and its photochemical behaviour. J Chem Soc Faraday Trans
84:2677–2682. https://doi.org/10.1039/F19888402677
235. Nakato T, Kuroda K, Kato C (1989) Photoreduction of methylviologen in the interlayer of
K 4 Nb 6 O 17 . J Chem Soc Chem Commun 1144. https://doi.org/10.1039/c39890001144
236. Nakato T, Kuroda K, Kato C (1992) Syntheses of intercalation compounds of layered niobates
with methylviologen and their photochemical behavior. Chem Mater 4:128–132. https://doi.
org/10.1021/cm00019a027
237. Nakato T, Ito K, Kuroda K, Kato C (1993) Photochemical behavior of perovskite-related
layered niobates HA 2 Nb 3 O 10 (a ¼ Ca, Sr) intercalated with methylviologen. Microporous
Mater 1:283–286. https://doi.org/10.1016/0927-6513(93)80071-2
238. Nakato T, Miyata H, Kuroda K, Kato C (1988) Synthesis of methylviologen-HTiNbO 5
intercalation compound and its photochemical behavior. React Solids 6:231–238. https://doi.
org/10.1016/0168-7336(88)80063-9
239. Vermeulen LA, Snover JL, Sapochak LS, Thompson ME (1993) Efficient photoinduced
charge separation in layered zirconium viologen phosphonate compounds. J Am Chem Soc
115:11767–11774. https://doi.org/10.1021/ja00078a015
Photofunctions of Dye-Clay Hybrids: Recent Developments
307
