Диссертация (1150342), страница 19
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Ceram. Process Res.2013. Vol. 14, № 1. P. 92–95.131. Seo Y. H., Lee B. S., Jo Y., Choi Y., Ahn S., Yoon K., Woo K., Moon J., Ryu B.H., Jeong S. Facile microwave-assisted synthesis of multiphase CuInSe2 nanoparticlesand the role of secondary CuSe phase on photovoltaic device performance // Conf. Rec.IEEE Photovolt. Spec. Conf. 2013.
P. 426–429.132. Fitzmorris R. C., Oleksak R. P., Zhou Z., Mangum B. D., Kurtin J. N., Herman G.S. Structural and optical characterization of CuInS2 quantum dots synthesized bymicrowave-assisted continuous flow methods // J. Nanoparticle Res. 2015. Vol. 17, №7. P. 319.133. Tomaev V.V., Mazur A.S., Grevtsev A.S. A study of the process of thermaloxidation of lead selenide by the NMR and XRD methods // Glass Physics andChemistry.
2017. Vol. 43. P. 70–74.134. Rozenberg M., Loewenschuss A., Marcus Y. IR spectra and hydration of shortchain polyethyleneglycols // Spectrochim. Acta Part A Mol. Biomol. Spectrosc. 1998.Vol. 54, № 12. P. 1819–1826.135. Deygen I. M., Kudryashova E. V. New versatile approach for analysis of PEGcontent in conjugates and complexes with biomacromolecules based on FTIRspectroscopy // Colloids Surfaces B Biointerfaces.
2016. Vol. 141. P. 36–43.136. Patel R., Bingham J., Daniel S., Watkins-Kenney S., Kennedy A. TheDetermination of Polyethlylene Glycol and Water in Archaeological Wood using118Infrared Spectroscopy and Stepwise Multiple Linear Regression // Int. J. Conserv. Sci.2012. Vol. 3, № 1.
P. 3–10.137. Lee J. Y., Lee S. J., Kim K. S. Raman intensities of C=C stretching vibrationalfrequencies of polyenes: Nodal mode analysis // J. Chem. Phys. 1997. Vol. 107, № 11.P. 4112.138. Pestryakov A. N., Petranovskii V. P., Kryazhov A., Ozhereliev O., Pfander N.,Knop-Gericke A. Study of copper nanoparticles formation on supports of differentnature by UV-Vis diffuse reflectance spectroscopy // Chem. Phys. Lett.
2004. Vol. 385,№ 3-4. P. 173–176.139. Spessard J. E. Spectra of ions with 9d electrons-I. Spectra of copper (II) andsilver (II) in perchloric, nitric, sulfuric, and phosphoric acid media // Spectrochim. Acta.1969. Vol. 25A. P. 731–748.140. Holmes O. G., McClure D. S. Optical Spectra of Hydrated Ions of the TransitionMetals // J. Chem. Phys. 1957. Vol. 26, № 6. P.
1686–1694.141. Matsuoka J., Toyoda M., Yoshida S. Composition dependence of the opticalabsorption spectra of cupric ion in sodium borosilicate glass melts // J. Non. Cryst.Solids. 2008. Vol. 354, № 2-9. P. 255–258.142. Zhang Q., Chen G., Dong G., Zhang G., Liu X., Qiu J., Zhou Q., Chen Q., Chen.The reduction of Cu2+ to Cu+ and optical properties of Cu+ ions in Cu-doped andCu/Al-codoped high silica glasses sintered in an air atmosphere // Chem. Phys. Lett.Elsevier B.V., 2009.
Vol. 482, № 4-6. P. 228–233.143. Duran A., Navarro J.M.F. The Coloring of Glass by Cu2+ Ions // Phys. andChem. of Glasses 1985. Vol. 26, № 4. P. 126-131.144. Feng Z. V., Li X., Gewirth A. A. Inhibition due to the interaction of polyethyleneglycol, chloride, and copper in plating baths: A surface-enhanced Raman study // J.Phys. Chem.
B. 2003. Vol. 107, № 35. P. 9415–9423.145. Siidra O. I., Krivovichev S. V., Armbruster T., Filatov S.K., Pekov I.V. Thecrystal structure of Leningradite, PbCu3(VO4)2Cl2 // The Canadian Mineralogist 2007.Vol. 45, P. 445-449.119146. Gemmi M., Campostrini I., Demartin F., Gorelik T. E., Gramaccioli C. M.Structure of the new mineral sarrabusite, Pb 5CuCl 4(SeO 3) 4, solved by manualelectron-diffraction tomography // Acta Crystallogr. Sect. B Struct. Sci. 2012. Vol.
68,№ 1. P. 15–23.147. Rincon C., Ramirez F. J. Lattice vibrations of CulnSe2 and CuGaSe2 by Ramanmicrospectrometry // J. Appl. Phys. 1992. Vol. 72. P. 4321–4324.148. Luo M. F., Fang P., He M., Xie Y. L. In situ XRD, Raman, and TPR studies ofCuO/Al2O3 catalysts for CO oxidation // J. Mol. Catal. A Chem. 2005. Vol. 239, № 12. P. 243–248.149. Guo L., Shen X., Zhu G., Chen K. Preparation and gas-sensing performance ofIn2O3 porous nanoplatelets // Sensors Actuators, B Chem.
2011. Vol. 155, № 2. P. 752–758.150. Xue C., Papadimitriou D., Raptis Y. S., Esser N., Richter W., Siebentritt S., LuxSteiner M. C. Compositional dependence of Raman scattering and photoluminescenceemission in Cu xGaySe2 thin films // J. Appl. Phys. 2003. Vol. 94, № 2003. P. 4341.151. Ramirez F. J., Rincon C. Polarized micro-Raman spectra in CuGaSe2 // SolidState Commun. 1992.
Vol. 84, № 5. P. 551–556.152. Witte W., Kniese R., Powalla M. Raman investigations of Cu(In,Ga)Se2 thinfilms with various copper contents // Thin Solid Films. 2008. Vol. 517, № 2. P. 867–869.153. Jeong A. R., Jo W., Park D. Y., Cheong H., Seo Y. K., Park J. H., Chung J. S.,Lee Y. S., Kwark Y. J. Effects of substrates on structural and optical properties of Cupoor CuGaSe2 thin films prepared by in-situ co-evaporation // Curr. Appl. Phys. 2013.Vol. 13, № 5.
P. 907–912.154. Shay J.L., Tell B., Kasper H.M., Schiavone L.M. Electronic structure of AgInSe2and CuInSe2 // Phys. Rev. B. 1973. Vol. 7, № 10. P. 4485–4490.155. Jung S.Il., Yoon K.H., Ahn S., Gwak J., Yun J.H. Fabrication andcharacterization of wide band-gap CuGaSe2 thin films for tandem structure // Curr.Appl.
Phys. 2010. Vol. 10. P. S395–S398..