Диссертация (1150217), страница 14
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Teranishi, Z.-G. Ye, M. Sato, and Y. Hinatsu, “Structural chemistry of new ionexchangeable tantalates with layered perovskite structure: new Dion–Jacobson phaseMCa2Ta3O10 (M = alkali metal) and Ruddlesden–Popper phase Na2Ca2Ta3O10,” Mater. Res.Bull., vol. 34, no. 6, pp. 971–982, Apr.
1999.[12] B. Aurivillius, “Mixed bismuth oxides with layer lattices. I,” Arki Kemi, vol. 1, p. 463, 1949.[13] B. Aurivillius, “Mixed bismuth oxides with layer lattices. II,” Arki Kemi, vol. 1, p. 499, 1949.[14] B. Aurivillius, “Mixed bismuth oxides with layer lattices. III,” Arki Kemi, vol. 2, p.
519, 1950.113[15] J. Gopalakrishnan, V. Bhat, “A2Ln2Ti3O10 (A = potassium or rubidium; Ln = lanthanum or rareearth): a new series of layered perovskites exhibiting ion exchange,” Inorg. Chem., vol. 26, pp.4299–4301, 1987.[16] J. Ollivier, T. E. Mallouk, “‘Chimie douce’ sythesis of perovskite-type SrTa2O6 and SrTa2xNbxO6,”Chem. Mater., vol. 10, pp. 2585–2587, 1998.[17] W. Sugimoto, M. Shirata, “New conversion reaction of an aurivillius phase into the protonatedform of the layered perovskite by the selective leaching of the bismuth oxide sheet,” Chem.Phys., no. 14, pp.
11601–11602, 1999.[18] M. Kato, T. Kajita, R. Hanakago, Y. Koike, “Search for new superconductors by the Liintercalation into layered perovskites,” Phys. C Supercond., vol. 445–448, pp. 26–30, Oct. 2006.[19] L. M. Nunes, V. D. Cardoso, C. Airoldi, “Layered titanates in alkaline, acidic and intercalatedwith 1,8-octyldiamine forms as ion-exchangers with divalent cobalt, nickel and copper cations,”Mater.
Res. Bull., vol. 41, no. 6, pp. 1089–1096, Jun. 2006.[20] V. Thangadurai, G. N. Subbanna, J. Gopalakrishnan, “Ln2□Ti2O7 (Ln = La, Nd, Sm, Gd): anovel series of defective Ruddlesden–Popper phases formed by topotactic dehydration ofHLnTiO4,” J. Chem. Commun., vol. 7, no. c, pp. 1299–1300, 1998.[21] R. E. Schaak, T. E.
Mallouk, “Synthesis, proton exchange, and topochemical dehydration of newRuddlesden–Popper tantalates and titanotantalates,” J. Solid State Chem., vol. 155, no. 1, pp. 46–54, Nov. 2000.[22] T. Sivakumar, S. Lofland, K. Ramanujachary, K. Ramesha, G. Subbanna, J. Gopalakrishnan,“Transforming n=1 members of the Ruddlesden–Popper phases to a n=3 member throughmetathesis: synthesis of a new layered perovskite, Ca2La2CuTi2O10,” J.
Solid State Chem., vol.177, no. 7, pp. 2635–2638, Jul. 2004.[23] K. Toda, M. Sato, “Synthesis and structure determination of new layered perovskite compounds,ALaTa2O7 and ACa2Ta3010 (A = Rb, Li),” J. Mater. Chem., vol. 6, no. c, pp. 1067–1071, 1996.[24] J. Gopalakrishnan, S. Uma, V. Bhat, “Synthesis of layered perovskite oxides, ACa2-xLaxNb3xTix010(A=K, Rb, Cs), and characterization of new solid acids, HCa2-xLaxNb3-xTixO10 (0<x<2),exhibiting variable bronsted acidity,” Chem. Mater., vol. 10, no. 13, pp. 132–136, 1993.[25] C.
H. Mahler, B. L. Cushing, J. N. Lalena, J. B. Wiley, “Divalent ion exchange of alkaline-earthcations into the triple-layered perovskite RbCa2Nb3O10,” Mater. Res. Bull., vol. 33, p. 1581,1998.[26] R. E. Schaak, T. E. Mallouk, “Perovskites by design : a toolbox of solid-state reactions,” Chem.Mater., Society, pp. 1455–1471, 2002.114[27] K. Hyeon, S.
Byeon, “Synthesis and structure of new layered oxides, MIILa2Ti3O10 (M = Co, Cu,and Zn),” vol. 10, no. 10, pp. 352–357, 1999.[28] S. Nishimoto, M. Matsuda, M. Miyake, “Novel protonated and hydrated Ruddlesden–Popperphases, HxNa1−xLaTiO4·yH2O, formed by ion-exchange/intercalation reaction,” J. Solid StateChem., vol. 178, no.
3, pp. 811–818, Mar. 2005.[29] R. E. Schaak, T. E. Mallouk, “KLnTiO4 (Ln=La, Nd, Sm, Eu, Gd, Dy): a new series ofRuddlesden–Popper phases synthesized by ion-exchange of HLnTiO4,” J. Solid State Chem.,vol. 161, no. 2, pp. 225–232, Nov. 2001.[30] T. H. Wang, C. N. Henderson, T. I. Draskovic, T.
E. Mallouk, “Synthesis, exfoliation, andelectronic/protonic conductivity of the dion-jacobson phase layer perovskite HLa2TiTa2O10,”Chem. Mater., vol. 26, no. 2, pp. 898–906, 2014.[31] Z. Cheng, J. Lin, “Layered organic–inorganic hybrid perovskites: structure, optical properties,film preparation, patterning and templating engineering,” Cryst. Eng. Comm., vol. 12, no. 10, pp.2646–2662, 2010.[32] W. Sugimoto, M.
Shirata, K. Kuroda, Y. Sugahara, “Conversion of Aurivillius phasesBi2ANaNb3O12 (A = Sr or Ca) into the protonated forms of layered perovskite via acidtreatment,” Mater. Res., vol. 12, no. 6, pp. 2946–2952, 2002.[33] K. Toda, M. Kawakami, K. Uematsu, M. Sato, “Low temperature synthesis of titania andtitanates,” Key Eng. Mater., vol. 248, pp. 107–110, 2003.[34] J. Gopalakrishnan, T. Sivakumar, K.
Ramesha, V. Thangadurai, G. N. Subbanna,“Transformations of Ruddlesden-Popper oxides to new layered perovskite oxides by metathesisreactions,” Chem. Phys., no. 9, pp. 6237–6241, 2000.[35] T. A. Kodenkandath, J. N. Lalena, W. L. Zhou, E. E. Carpenter, C. Sangregorio, A. U. Falster,W. B. Simmons, C. J. O’Connor, J. B. Wiley, “Assembly of metal-anion arrays within aperovskite host. Low-temperature synthesis of new layered copper-oxyhalides, (CuX)LaNb2O7, X= Cl, Br,” J.
Am. Chem. Soc., vol. 121, no. 46, pp. 10743–10746, 1999.[36] D. Neiner, V. Golub, J. B. Wiley, “Synthesis and characterization of the new layered perovskite,Na0.10(VO)0.45LaTiO4·nH2O,” Mater. Res. Bull., vol. 39, no. 10, pp. 1385–1392, Aug.
2004.[37] N. Kinomura, N. Kumada, “Intercalation of weak Lewis bases into HTaWO6•nH2O,” Solid StateIonics, vol. 51, p. 1, 1992.[38] G. Lagaly, “Interaction of alkylamines with different types of layered compounds,” Solid StateIonics, vol. 22, p. 43, 1986.115[39] M. Machida, K. Miyazaki, S.
Matsushima, M. Arai, “Photocatalytic properties of layeredperovskite tantalates, MLnTa2O7 (M = Cs, Rb, Na, and H; Ln = La, Pr, Nd, and Sm),” J. Mater.Chem., vol. 13, no. 6, p. 1433, 2003.[40] O. Silyukov, M. Chislov, A. Burovikhina, T. Utkina, I. Zvereva, “Thermogravimetry study ofion exchange and hydration in layered oxide materials,” J. Therm. Anal.
Calorim., vol. 110, no.1, pp. 187–192, Oct. 2012.[41] A. J. Jacobson, J. W. Johnson, J. T. Lewandowski, “Interlayer chemistry between thicktransition-metal oxide layers: synthesis and intercalation reactions of K[Ca2Nan-3NbnO3n+1],”Inorg. Chem., vol. 24, p. 3729, 1985.[42] A. J. Jacobson, J. W. Johnson, J. Lewandowski, “Intercalation of the layered solid acidHCa2Nb3O10 by organic amines,” Mater. Res. Bull., vol. 22, no. 1, pp. 45–51, Jan. 1987.[43] M. M. J.
Treacy, S. B. Rice, A. J. Jacobson, J. T. Lewandouski, “Electron microscopy study ofdelamination in dispersions of the perovskite-related layered phases K[Ca2Nan-3NbnO3n-1]:evidence for single-layer formation,” Chem. Mater., vol. 2, pp. 279–286, 1990.[44] M. A. Bizeto, V. R. L. Constantino, “Layered H2K2Nb6O17 exfoliation promoted by nbutylamine,” Mater. Res. Bull., vol. 39, no. 12, pp. 1811–1820, Oct. 2004.[45] J.H. Choy, J.Y.
Kim, I. Chung, “Neutron diffraction and X-ray absorption spectroscopic analysesfor lithiated,” J. Phys. Chem. B, vol. 105, no. 5, pp. 7908–7912, 2001.[46] A. Armstrong, P. Anderson, “Synthesis and structure of a new layered niobium blue bronze:Rb2LaNb2O7,” Inorg. Chem., no. 9, pp. 4366–4369, 1994.[47] K.
Toda, T. Teranishi, M. Sato, “Possibility of superconductivity in new reduced tantalate andtitanate with the layered perovskite structure,” J. Eur. Ceram. Soc., vol. 19, pp. 1525–1529,1999.[48] D. Neiner, R. L. Sweany, V. Golub, J. B. Wiley, “Structure and properties of mixed valencetitanates, (LixVO)La2Ti3O10,” J. Mater. Chem., vol. 16, no.
2, p. 186, 2006.[49] N. S. P. Bhuvanesh, M.P. Crosnier-Lopez, H. Duroy, and J.L. Fourquet, “Synthesis,characterization and dehydration study of H(2)A(0.5n)B(n)O(3n+1)∙xH(2)O (n=2 and 3, A = Ca, Sr andB=Nb, Ta) compounds obtained by ion-exchange from the layered Li(2)A(0.5n)B(n)O(3n+1)perovskite materials,” J. Mater. Chem., vol. 10, no. 7, pp. 1685–1692, 2000.[50] Z. S. Gönen, D. Paluchowski, P.
Zavalij, B. W. Eichhorn, J. Gopalakrishnan, “Reversiblecation/anion extraction from K2La2Ti3O10: formation of new layered titanates, KLa2Ti3O9.5 andLa2Ti3O9,” Inorganic chemistry, vol. 45, no. 21. pp. 8736–42, Oct-2006.[51] Ю. М. Таиров, В. Ф.
Цветков, “Технология полупроводниковых и диэлектрическихприборов,” С.-Пб. Лань, стр. 322–396, 2002.116[52] Ю. Д. Третьяков, “Твердофазные реакции,” Соросовский образовательный журнал, гл. 4,стр. 35–39, 1990.[53] Y. Li, S. Yao, W. Wen, L. Xue, Y. Yan, “Sol–gel combustion synthesis and visible-light-drivenphotocatalytic property of perovskite LaNiO3,” J. Alloys Compd., vol. 491, no.
1–2, pp. 560–564, Feb. 2010.[54] Z. Li, H. Xue, X. Wang, X. Fu, “Characterizations and photocatalytic activity of nanocrystallineLa1.5Ln0.5Ti2O7 (Ln=Pr, Gd, Er) solid solutions prepared via a polymeric complex method,” J.Mol. Catal. A Chem., vol. 260, no. 1–2, pp. 56–61, Dec. 2006.[55] L. Zhang, M.
Ji, H. Wang, L. Lu, X. Yang, X. Wang, “Stearic acid sol–gel synthesis of ultrafinelayered K2Nd2Ti3O10 at low temperature and its acid-exchanging property,” Mater. Lett., vol. 60,no. 25–26, pp. 3100–3103, Nov. 2006.[56] Y. Huang, Y. Wei, L. Fan, M.
Huang, J. Lin, J. Wu, “Photocatalytic activities of HLaNb 2O7prepared by polymerized complex method,” Int. J. Hydrogen Energy, vol. 34, no. 13, pp. 5318–5325, Jul. 2009.[57] D. Chen, X. Jiao, R. Xu, “Hydrothermal synthesis and characterization of the layered titanatesMLaTiO4 (M = Li, Na, K) powders,” Mater. Res. Bull., vol. 34, no. 5, pp. 685–691, Mar. 1999.[58] Y. Huang, J. Wu, Y. Wei, J. Lin, M. Huang, “Hydrothermal synthesis of K2La2Ti3O10 andphotocatalytic splitting of water,” J.
Alloys Compd., vol. 456, no. 1–2, pp. 364–367, May 2008.[59] Z. Song, H. Xu, K. Li, H. Wang, H. Yan, “Hydrothermal synthesis and photocatalytic propertiesof titanium acid H2Ti2O5·H2O nanosheets,” J. Mol. Catal. A Chem., vol. 239, no. 1–2, pp. 87–91,Sep. 2005.[60] J. W. Liu, G. Chen, Z. H. Li, Z. G. Zhang, “Hydrothermal synthesis and photocatalyticproperties of ATaO3 and ANbO3 (A=Na and K),” Int.