Диссертация (1150072), страница 17
Текст из файла (страница 17)
187-195.[60] Смирнов П.Р., Тростин В.Н. Структура ближнего окружения иона Na+ в водных растворах его солей. // ЖОХ. 2007. Т. 77 (5). 745-751.[61] Смирнов П.Р., Тростин В.Н. Структуры ближнего окружения ионов K+, Rb+ иCs+в водных растворах их солей. // ЖОХ. 2007. Т. 77 (12). 1955-1962.[62] Смирнов П.Р., Тростин В.Н. Структурные параметры ближнего окруженияиона Ca+2 в водных растворах его солей. // ЖОХ. 2009. Т. 79 (8).
1242-1249.143144[63] Смирнов П.Р., Тростин В.Н. Структурные параметры ближнего окруженияионов Sr+2 и Ba+2 в водных растворах их солей. // ЖОХ. 2011. Т. 81 (2). 182-189.[64] Смирнов П.Р., Тростин В.Н. Структурные параметры гидратации ионов Be+2и Mg+2 в водных растворах их солей. // ЖОХ. 2008. Т. 78 (9). 1409-1416.[65] Смирнов П.Р., Тростин В.Н. Структурные параметры ближнего окруженияионов металлов III группы Периодической системы элементов в водных растворахих солей. // ЖОХ.
2013. Т. 83 (1). 18-28.[66] Ohtaki H., Radnai T. Structure and dynamics of hydrated ions. // Chem. Rev. 1993.V. 93. 1157-1204.[67] Hunt J.P., Friedman H.L. Aquo complexes of metal ions. // Progress in Inorg.Chem. 1983. V.30. 359-387.[68] Subramanian S., Fisher H.F. Near-Infrared spectral studies on the effects ofperchlorate and tetrafluoroborate ions on water structure. // J. Phys. Chem. 1972.
V. 76(1). 84-89.[69] McCabe W.C., Fisher H.F. A Near-Infrared spectroscopic method for investigatingthe hydration of a solute in aqueous solution. // J. Phys. Chem. 1970. V. 74 (15). 29902998.[70] McCabe W.C., Subramanian S., Fisher H.F. A Near-Infrared spectroscopicinvestigation of the effect of temperature on the structure of water. // J. Phys. Chem.1970. V. 74 (25). 4360-4369.[71] Brink G., Falk M. Infrared spectrum of HDO in aqueous solutions of perchloratesand tetrafluoroborates.
// Canad. J. Chem. 1970. V. 48. 3020-3025.[72] Bergstrom P., Lindgren J., Read M., Sandstrom M. Infrared spectroscopic evidencefor second-sphere hydration in aqueous solutions of Al+3, Cr+3, Rh+3. // J. Phys. Chem.1991. V. 95. 7650-7655.144145[73] Chen Yu, Zhang Yun-Hong, Zhao Li-Jun.
ATR-FTIR spectroscopic studies onaqueous LiClO4, NaClO4 and M(ClO4)2 solutions. // J. Phys. Chem. Chem. Phys. 2004.V. 6. 537-542.[74] Zhang Yun-Hong, Chan C.K. Observations of water monomers in supersaturatedNaClO4, LiClO4 and M(ClO4)2 droplets using Raman spectroscopy. // J. Phys. Chem. A.2003. V. 107. 5956-5962.[75] Guo Xin Shou Jing-Jing, Zhang Yun-Hong, Reid J.P. Micro-Raman analysis ofassociation equilibria in supersaturated NaClO4 droplets. // Analyst. 2010. V. 135. 495502.[76] James D.W., Cutler P.G.
Ion-ion-solvent interactions in solution. 10. Group 2perchlorates in water. // Aust. J. Chem. 1986. V. 39. 137-147.[77] Frost R.L., James D.W., Appleby R., Mayes R.E. Ion-pair formation and anionrelaxation in aqueous solutions of group I perchlorates. A Raman spectral study. // J.Phys. Chem. 1982. V. 86. 3840-3845.[78] James D.W., Mayes R.E. Ion-ion-solvent interactions in solution. 8. Spectroscopicstudies of the lithium perchlorate/N,N-dimethylformamide system.
// J. Phys. Chem.1984. V. 88. 637-642.[79] James D.W., Armishaw R.F. Effect of perchlorate salts on the hydrogen bondedstructure of water. // Inorg. Nucl. Chem. Letters. 1976. V. 12. 425-434.[80] James D.W. Spectroscopic studies of ion-ion-solvent interaction in solutionscontaining oxyanions. // Progress in Inorganic Chemistry. 1985.
V. 33. 353-391.[81] James D.W., Armishaw R.F. Structure of aqueous solutions: Infrared spectra of thewater librational mode in solutions of monovalent halides. // Aust. J. Chem. 1975. V.28. 1179-1186.[82] Stangret J., Kostrowicki J. IR study of aqueous metal perchlorate solutions. // J.Solut. Chem. 1988. V. 17 (2). 165-173.145146[83] Gowen A.A., Amigo J.M., Tsenkova R. Characterisation of hydrogen bondperturbations in aqueous systems using aquaphotomics and multivatiate curveresolution-alternating least squares. // Analytica Chimica Acta. 2013. V.
759. 8-20.[84] Max J.J., De Blois S., Veileux A., Chapados C. IR spectroscopy of aqueous alkalihalides. Factor analysis. // Can. J. Chem. 2001. V. 79. 13-21.[85] Max J.J., Chapados C. Infrared spectra of cesium chloride aqueous solutions. // J.Chem. Phys. 2000. V. 113 (16). 6803-6814.[86] Max J.J., Chapados C. IR spectroscopy of aqueous alkali halide solutions: Puresalt-solvated water spectra and hydration numbers. // J. Chem.
Phys. 2001. V. 115 (6),2664-2675.[87] Kristiansson O. Hydration of ions in aqueous solution studied by infraredspectroscopy. // Acta Univ. Upsaliensis. Part 1. 1989. 1-38.[88] Andaloro G., Chirico P., Guzzio G., Leone M., Palma-Vittorelli M.B. Thermalbehavior of the near IR absorption of H2O and NaClO4 aqueous solutions.// J. Chem.Phys.
1997. V. 66 (1). 335-341.[89] Frost R.L., Appleby R., Carick M.T., James D.W. Using Fourier transformationsand Raman bandshape analysis to study ion-solvent interactions in aqueous solution. //Can. J. Spectroscopy. 1982. V. 27 (3). 82-88.[90] Frost R.L., James D.W. Ion-Ion-Solvent Interactions in Solution. 3. AqueousSolutions of Sodium Nitrate.
// J. Chem. Soc. Farad. Trans. I. 1982. V. 78. 3223-3234.[91] James D.W., Frost R.L. Ion-ion-solvent interactions in solution. Aqueous solutionsof nitrates of cations from Groups IIA and IIIA. // Aust. J. Chem. 1982. V. 35 (9). 17931806.[92] Frost R.L., James D.W. Ion-Ion-Solvent Interactions in Solution. 4. Raman Spectraof Aqueous Solutions of Some Nitrates with Monovalent Cations. // J.
Chem. Soc.Farad. Trans. I. 1982. V. 78. 3235-3247.146147[93] Frost R.L., James D.W. Ion-ion-solvent interactions in solution. 6. Aqueoussolutions of metal nitrates having cations with incomplete valence shells. // J. Chem.Soc. Farad. Trans. I. 1982. V. 78. 3263-3279.[94] Frost R.L., James D.W. Ion-ion-solvent interactions in solution. 5. Influence ofadded halide, change in temperature and solvent deuteration on ion association inaqueous solutions of nitrate salts. // J. Chem. Soc. Farad.
Trans. I. 1982. V. 78. 32493261.[95] Мюнд Л.А. Применение сравнительного метода для изучения взаимовлияниямикрочастиц в водных растворах электролитов по данным колебательной спектроскопии. // Проблемы современной химии координационных соединений. Л.:Изд-во Ленинградского. ун-та. 1987. Вып. 8. 141-154.[96] Walrafen G.E. Raman spectral studies of the effects of perchlorate ion on waterstructure. // J.
Chem. Phys. 1970. V. 52 (8). 4176-4198.[97] Глебовский Д.Н., Мюнд Л.А. Перенос заряда и сильная водородная связь.Аквакатионы. // Спектрохимия внутри- и межмолекулярных взаимодействий. Подред. Бахшиева Н.Г., Л.: Изд-во Ленинградского. ун-та. 1978. Вып. 2. 136-156.[98] Мюнд Л.А. Исследование водных растворов перхлоратов металлов первойтретьей групп Периодической системы элементов методами колебательной спектроскопии. Автореф.
дис. …канд. хим. наук., Л., 1973. 25c.[99] Irish D. E., Brooker M.H. Raman and infrared spectral studies of electrolytes. //Advances in Infrared and Raman Spectroscopy. 1976. V. 2. 212-311.[100] Kozhevnikova G.V., Keresztury G. The state of indium ions in nitrate solutions:A Raman Spectroscopic Study. // Inorganica Chimica Acta. 1985.
V. 98. 59-65.[101] Сипачев В.А., Григорьев А.И. Исследование аквакатионов бериллия, магния, алюминия, скандия и иттрия в кристаллах и водных растворах методом колебательной спектроскопии. // Журн. структ. химии. 1969. Т. 10 (5). 820-824.[102] Kanno H., Hiraishi J. Raman study of aqueous rare-earth nitrate solutions inliquid and glassy states.
// J. Phys. Chem. 1984. V. 88. 2787-2792.147148[103] Бурков К.А., Кожевникова Г.В., Лилич Л.С., Мюнд Л.А. Аква- и гидроксокомплексы в растворах перхлората висмута по данным СКР. // Координационнаяхимия. 1979. Т. 5 (9). 1328-1331.[104] Nelson D.L., Irish D.E. Interactions in lanthanide systems I.A. Raman andinfrared study of aqueous gadolinium nitrate. // J. Chem.
Phys. 1971. V.54 (10). 44794489.[105] Bulmer J.T., Irish D. E., Odberg L. The temperature dependence of Raman bandparameters for aquated Mg(II) and Zn(II). // Can. J. Chem. 1975, V. 53 (24). P.38063811.[106] Silveira A. Raman effect of concentrated electrolytic solutions. // J. Chem. Phys.1939. V. 7. 380-381.[107] Kanno H., Hiraishi J. Anomalous concentration dependence of the inner-spherehydration number change in aqueous europium(III) chloride and gadolinium chloridesolutions. // J. Phys. Chem. 1982. V. 86 (9). 1488-1490.[108] Kanno H., Hiraishi J.
Raman spectroscopic evidence for a discrete change incoordination number of rare earth aquo-ions in the middle of the series // Chem. Phys.Letters. 1980. V. 75 (3). 553-556.[109] Kanno H. Hydrations of metal ions in aqueous electrolyte solutions: a Ramanstudy. // J. Phys. Chem. 1988. V. 92 (14). 4232-4236.[110] Kanno H., Yamaguchi T., Ohtaki H. A Raman investigation of the hydrationnumber of scandium (III) ions. // J. Phys.Chem.
1989. vol. 93. P. 1695-1697.[111] Charlot G. Les Methodes de la Chimie Analytique Analyse Quantitative Minerale.4th edn. Masson et Cie. Paris. France. 1961.[112] Samuelson O. Ion Exchange Separations in Analytical Chemistry. Almqvist andWiksell. John Wiley & Sons. New York. USA. 1963.148149[113] Kudrev A.G. Factor analysis in determination of concentration stability constantsand stoichiometric ratios for systems with weak complexation. // Russ. J.
Coord. Chem.1999. V. 25. 141–147.[114] Kudrev A.G. Soft modeling of the hydrolysis of a monophenanthroline complexbased on spectrophotometric data. // Zh. Neorganic. Khim. 2001. V. 46. 854–859.[115] Kudrev A.G. Cooperative binding of 2,2¢-bipyridine into polynucleotide poly(A)poly(U-) in an alkaline aqueous solution. // Biopolymers.