274. El-Nahhal Y, Nir S, Margulies L, Rubin B (1999) Reduction of photodegradation and
volatilization of herbicides in Organo-clay formulations. Appl Clay Sci 14:105–119. https://
doi.org/10.1016/S0169-1317(98)00053-2
275. Margulies L, Rozen H, Cohen E (1985) Energy transfer at the surface of clays and protection
of pesticides from photodegradation. Nature 315:658–659. https://doi.org/10.1038/315658a0
276. Undabeytia T, Nir S, Tel-Or E, Rubin B (2000) Photostabilization of the herbicide norflurazon
by using organoclays. J Agric Food Chem 48:4774–4779. https://doi.org/10.1021/jf9912405
277. Goto T, Ogawa M (2015) Visible-light-responsive photocatalytic flow reactor composed of
Titania film photosensitized by metal complex-clay hybrid. ACS Appl Mater Interfaces
7:12631–12634. https://doi.org/10.1021/acsami.5b03128
278. Goto T, Ogawa M (2016) Efficient photocatalytic oxidation of benzene to phenol by metal
complex-clay/TiO 2 hybrid photocatalyst. RSC Adv 6:23794–23797. https://doi.org/10.1039/
c5ra25430b
279. Kakegawa N, Ogawa M (2004) Effective luminescence quenching of Tris (2,2-bipyridine)
ruthenium (II) by methylviologen on clay by the aid of poly (vinylpyrrolidone). Langmuir
20:7004–7009
280. Lu L, Jones RM, McBranch D, Whitten D (2002) Surface-enhanced superquenching of
cyanine dyes as J-aggregates on Laponite clay nanoparticles. Langmuir 18:7706–7713.
https://doi.org/10.1021/la0259306
281. Kanegawa N, Ogawa M (2003) The synthesis of dihexadecylviologen- intercalation compounds and the photochemical reactions. Clay Sci 12:153–157
282. Okada T, Ogawa M (2002) Adsorption of phenols onto 1,1
0 -dimethyl-4,4
0 -bipyridiniumsmectites. Chem Lett 31:812–813
283. Yui T, Tsuchino T, Itoh T, Ogawa M, Fukushima Y, Takagi K (2005) Photoinduced
one-electron reduction of MV
2+ in titania nanosheets using porphyrin in mesoporous silica
thin films. Langmuir 21:2644–2646. https://doi.org/10.1021/la047385+
284. Yui T, Kobayashi Y, Yamada Y, Yano K, Fukushima Y, Torimoto T, Takagi K (2011)
Photoinduced electron transfer between the anionic porphyrins and viologens in titania
nanosheets and monodisperse mesoporous silica hybrid films. ACS Appl Mater Interfaces
3:931–935. https://doi.org/10.1021/am101281n
285. Okada T, Matsutomo T, Ogawa M (2010) Nanospace engineering of methylviologen modified
hectorite-like layered silicates with varied layer charge density for the adsorbents design. J
Phys Chem C 114:539–545. https://doi.org/10.1021/jp9089886
286. Ogawa M, Matsutomo T, Okada T (2008) Preparation of hectorite-like swelling silicate with
controlled layer charge density. J Ceram Soc Jpn 116:1309–1313. https://doi.org/10.2109/
jcersj2.116.1309
287. Takagi S, Tryk DA, Inoue H (2002) Photochemical energy transfer of cationic porphyrin
complexes on clay surface. J Phys Chem B 106:5455–5460. https://doi.org/10.1021/
jp0200977
288. Fujimura T, Ramasamy E, Ishida Y, Shimada T, Takagi S, Ramamurthy V (2016) Sequential
energy and electron transfer in a three-component system aligned on a clay nanosheet. Phys
Chem Chem Phys 18:5404–5411. https://doi.org/10.1039/c5cp06984j
289. Miyamoto N, Kuroda K, Ogawa M (2004) Exfoliation and film preparation of a layered
titanate, Na 2 Ti 3 O 7 , and intercalation of pseudoisocyanine dye. J Mater Chem 14:165.
https://doi.org/10.1039/b308800f
290. Eguchi M, Tachibana H, Takagi S, Tryk DA, Inoue H (2007) Dichroic measurements on
dicationic and tetracationic porphyrins on clay surfaces with visible-light-attenuated total
reflectance. Bull Chem Soc Jpn 80:1350–1356. https://doi.org/10.1246/bcsj.80.1350
291. Takenawa R, Komori Y, Hayashi S, Kawamata J, Kuroda K (2001) Intercalation of
nitroanilines into kaolinite and second harmonic generation. Chem Mater 13:3741–3746.
https://doi.org/10.1021/cm010095j
310
T. Yamaguchi et al.
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