references - information and library network...

27
REFERENCES Abdel-Baki, M., Abdel-Wahab, F. A. and El-Diasty, F. (2012). One-photon band gap engineering of borate glass doped with ZnO for photonics applications. Journal of Applied Physics 111: 073506-10. Abdel-Baki, M., Abdel-wahab, F. A., Radi, A. and El-Diasty, F. (2007). Factors affecting optical dispersion in borate glass systems. Journal of Physics and Chemistry of solids 68: 1457-70. Abdel-Baki, M. and El-Diasty, F. (2011). Role of oxygen on the optical properties of borate glass doped with ZnO. Journal of Solid State Chemistry 184: 2762-69. Abo-Naf, S. M. (2012). FTIR and UV–VIS optical absorption spectra of gamma- irradiated MoO 3 -doped lead borate glasses. Journal of Non-Crystalline Solids 358: 406-13. Adams, R. V. and Douglas, R. W. (1959). Infrared studies on various samples of fused silica with special reference to the bands due to water. Journal of Society of Glass Technology 43: 147-58. Ahmed, M. M. and Hogarth, C. A. (1987). High electric field and switching phenomena in some borate and vanadate glasses. Physica status solidi (a) 101: K49-K53. Al-Ani, S. K. J, Hogarth, C. A. and El-Mallawani, R. A. (1985). A study of optical absorption in tellurite and tungsten tellurite glasses. Journal of Material Sciences 20: 661-67. Altaf, M., Chaudhary, M. A. and Maria, Z. (2003). Study of optical bandgap of Zinc Borate glasses. Journal of Research (Science), Bahauddin Zakariya University, Multan, Pakistan 14: 253-59. American Society of Testing Materials (ASTM) (1945). Anderson, G. W. and Compton, W. D. (1970). Optical Absorption Properties of Vanadate Glasses. Journal of Chemical Physics 52: 6166-74.

Upload: others

Post on 13-Mar-2020

0 views

Category:

Documents


0 download

TRANSCRIPT

Page 1: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

REFERENCES

Abdel-Baki, M., Abdel-Wahab, F. A. and El-Diasty, F. (2012). One-photon band gap

engineering of borate glass doped with ZnO for photonics applications. Journal

of Applied Physics 111: 073506-10.

Abdel-Baki, M., Abdel-wahab, F. A., Radi, A. and El-Diasty, F. (2007). Factors

affecting optical dispersion in borate glass systems. Journal of Physics and

Chemistry of solids 68: 1457-70.

Abdel-Baki, M. and El-Diasty, F. (2011). Role of oxygen on the optical properties of

borate glass doped with ZnO. Journal of Solid State Chemistry 184: 2762-69.

Abo-Naf, S. M. (2012). FTIR and UV–VIS optical absorption spectra of gamma-

irradiated MoO3-doped lead borate glasses. Journal of Non-Crystalline Solids

358: 406-13.

Adams, R. V. and Douglas, R. W. (1959). Infrared studies on various samples of fused

silica with special reference to the bands due to water. Journal of Society of

Glass Technology 43: 147-58.

Ahmed, M. M. and Hogarth, C. A. (1987). High electric field and switching phenomena

in some borate and vanadate glasses. Physica status solidi (a) 101: K49-K53.

Al-Ani, S. K. J, Hogarth, C. A. and El-Mallawani, R. A. (1985). A study of optical

absorption in tellurite and tungsten tellurite glasses. Journal of Material

Sciences 20: 661-67.

Altaf, M., Chaudhary, M. A. and Maria, Z. (2003). Study of optical bandgap of Zinc

Borate glasses. Journal of Research (Science), Bahauddin Zakariya University,

Multan, Pakistan 14: 253-59.

American Society of Testing Materials (ASTM) (1945).

Anderson, G. W. and Compton, W. D. (1970). Optical Absorption Properties of

Vanadate Glasses. Journal of Chemical Physics 52: 6166-74.

Page 2: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

134

Ansari, A. A., Kaushik, A., Solanki, P. R. and Malhotra, B. D. (2008). Sol–gel derived

nanoporous cerium oxide film for application to cholesterol biosensor.

Electrochemistry Communications 10: 1246-49.

Arai, K., Namikawa, H., Kumata, K., Honda, T., Ishii, Y. and Handa, T. (1986).

Aluminium or phosphorus co-doping effects on the fluorescence and structural

properties of neodymium-doped silica glass, Journal of Applied Physics 59:

3430-36.

Ardelean, I. and Cora, S. (2008). FT-IR, Raman and UV–VIS spectroscopic studies of

copper doped 3Bi2O3·B2O3 glass matrix. Journal of Materials Science:

Materials in Electronics 19: 6584-88.

Ardelean, I., Cora, S. and Rusu, D. (2008). EPR and FT-IR spectroscopic studies of

Bi2O3–B2O3–CuO glasses. Physica B: Condensed Matter 403: 3682-85.

Ardelean, I. and Toders, M. (2006). FTIR structural investigation of 3B2O3-BaO glass

matrix containing manganese ions. Journal of Optoelectronics and Advanced

Materials 8: 1118-20.

Arora, A., Kumar, V., Singh, K. and Pandey, O. P. (2011). Thermal, Structural and

Crystallization Kinetics of ZnO-BaO-SiO2-B2O3-Mn2O3 Based Glass Sealants

for Solid Oxide Fuel Cells. Journal of Ceramics International 37: 2101-07.

Arora, M., Baccaro, S., Sharma, G., Singh, D., Thind, K. S. and Singh, D. P. (2009).

Radiation effects on PbO-Al2O3-B2O3-SiO2 glasses by FTIR spectroscopy.

Nuclear Instruments and Methods in Physics Research Section B: Beam

Interactions with Materials and Atoms 267: 817-20.

Arshak, K. and Korostynska, O. (2004). γ-Radiation sensing properties of cerium oxide

based thick film structures. Journal of Sensors and Actuators A: Physical 115:

196-01.

Austin, G. and Mott, N. F. (1969). Polarons in crystalline and non-crystalline materials.

Advance Physics 18: 41-102.

Avellaneda, C. O. and Bulhões, L. O. S. (2003). Photochromic properties of WO3 and

WO3: X (X=Ti, Nb, Ta and Zr) thin films. Solid State Ionics 165: 117-21.

Page 3: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

135

Avrami, M. (1939). Kinetics of Phase Change. I General Theory. Journal of Chemistry

Physics 7: 1103-12.

Bachvarova-Nedelcheva, A., Lordanova, R., Aleksandrov, L., Dimitriev, Y. and

AtaaLLa, M. (2011). Optical properties and crystallization of glasses in the

system Bi2O3–MoO3–B2O3. Journal of Material Science. 46: 7177-83.

Baidoc, S. C., Ardelean, I. and Pascuta, P. (2011). Structural investigation of xAg2O·

(100−x)·[2B2O3·As2O3] glasses doped with manganese ions. Physica B:

Condensed Matter 406: 4253-56.

Baki, M. A., Wahab, F. A. A., Radi, A. and El-Diasty, F. (2007). Factors affecting

optical dispersion in borate glass systems. Journal of Physics and Chemistry of

Solids 68: 1457-70.

Bandyopadhyay, A. K., Isard, J. O. and Parke, S. (1978). Polaronic conduction and

spectroscopy of borate glasses containing vanadium. Journal of Physics D:

Applied Physics 11: 2559-76.

Batal, F. H., Marzouk, M. A. and Abdel Ghany, A. M. (2011). Gamma rays interaction

with bismuth borate glasses doped by transition metal ions. Journal of Material

Science 46: 5140-52.

Baucke, F. G. K. (1987). Electrochromic mirrors with variable reflectance. Solar

Energy Materials 16: 67-77.

Baucke, F. G. K., Bange, K. and Gambke, T. (1988). Reflecting electrochromic devices.

Displays 9: 179-87.

Bausa, L. E., Jaque, F., Sole, J. G. and Duran, A. (1988). Photoluminescence of Ti3+

in

P2O5-Na2O-Al2O3 glass. Journal of Materials Science 23: 1921-22.

Benksteina, K. D., Raman, B., Lahr, D. L., Bonevich, J.E. and Semancik, S. (2009).

Inducing analytical orthogonality in tungsten oxide-based microsensors using

materials structure and dynamic temperature control. Sensors and Actuators B

137: 48-55.

Page 4: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

136

Berkemeier, F., Voss, S., Imre, A. W. and Mehrer, H. (2005). Molar volume, glass-

transition temperature, and ionic conductivity of Na- and Rb-borate glasses in

comparison with mixed Na–Rb borate glasses. Journal of Non-Crystalline Solids

351: 3816-25.

Biscoe, J. and Warren, B. E. (1938). X-ray diffraction study of soda-boric oxide glass.

Journal of American Ceramic Society 21: 287-93.

Bobkova, N. M. and Khot’ko, S. A. (2005). Structure of zinc-borate low-melting

glasses derived from IR spectroscopy data. Journal of Applied Spectroscopy 72:

853-57.

Bray, P. J. and O’Keefe, J. G. (1963). Nuclear Magnetic Resonance Investigations of

Structure of Alkali Borate Glasses. Physics Chemistry of Glasses 4: 37-46.

Brow, R. K., Tallant, D. R. and Turner, G. L. (1997). Polyhedral arrangements in

lanthanum aluminoborate glasses. Journal of the American Ceramic Society.

80: 1239-44.

Bürger, H., Kneipp, H., Hobert, H., Vogel, W., Kozhukharov, V. and Neov, S. (1992).

Glass formation, properties and structure of glasses in the TeO2-ZnO system.

Journal of Non-Crystalline Solids 151: 134-42.

Caillet, P. and Saumagne, P. (1969). Study of anhydrous alkaline monomolybdates and

monotungstates by infrared and raman. Journal of Molecular Structure 4: 191-

01.

Chakraborty, I. N., Day, D. E., Lapp, J. C. and Shelby, J. E. (1985). Structure-Property

Relations in Lanthanide Borate Glasses. Journal of American Ceramic Society

68: 368-71.

Charton, P., Gengembre, L. and Armand, P. (2002). TeO2–WO3 Glasses: Infrared, XPS

and XANES Structural Characterizations. Journal of Solid State Chemistry 168:

175-83.

Chemseddine, A., Morineau, R. and Livage, J. (1983). Electrochromism of colloidal

tungsten oxide. Solid State Ionics 9-10: 357-61.

Page 5: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

137

Cheng, H., Xiao, Y., Shuguang, C. and Tang, B. (2009). Structure and crystallization of

B2O3–Al2O3–SiO2 glasses. Physica B: Condensed 404: 1230-34.

Chernov, S. P., Devyatkova, L. I., Ivanova, O. N., Kaminskii, A. A., Mikhailin, V. V.,

Rudney, S. N. and Uvanova, T. V. (1985). 5d14f

N−1-4f

N absorption and

luminescence of Ce3+

, Pr3+

and Nd3+

ions in BaY2F8 single crystals. Physica

Status Solidi (a) 88: 169-73.

Chiodini, N., Fasoli, M., Martini, M., Rosetta, E., Spinolo, G., Vedda, A., Nikl, M.,

Solovieva, N., Baraldi, A. and Capelletti, R. (2002). High-efficiency SiO2:Ce3+

glass scintillators. Journal of Applied Physics Letters 81: 4374-77.

Chockalingam, R., Amarakoon, V. R. W. and Giesche, H. (2008). Alumina/cerium

oxide nano-composite electrolyte for solid oxide fuel cell applications. Journal

of European Ceramic Society 28: 959-63.

Coelhoa, J., Freireb, C. and Hussain, N. S. (2012). Structural studies of lead lithium

borate glasses doped with silver oxide. Spectrochimica Acta Part A: Molecular

and Biomolecular Spectroscopy 86: 392-98.

Conanec, O. M. and Moseley, P. T. (2002). Gas sensing properties of the mixed

molybdenum tungsten oxide, W0.9Mo0.1O3. Journal of Material Chemistry 12:

1779-81.

Corradi, A. B., Cannillo, V., Montorsi, M. and Siligardi, C. (2006). Influence of Al2O3

addition on thermal and structural properties of erbium doped glasses. Journal of

Material Science 41: 2811-19.

Cozar, O., Ardelean, I., Bratu, I., Ilonca, G. and Simon, S. (1993). EPR, IR and

magnetic susceptibility studies of xCr2O3 (l -x)[2B2O3•Li2O ] glasses. Solid State

Communications 86: 569-72.

Cozar, O., Ardelean, I., Bratu, I., Simon, S., Craciun, C., David, L. and Cefan, C.

(2001). IR and EPR studies on some lithium-borate glasses with vanadium ions.

Journal of Molecular Structure 563-564: 421-25.

Page 6: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

138

Davis, E. A. and Mott, N. F. (1970). Conduction in non-crystalline systems V.

Conductivity, optical absorption and photoconductivity in amorphous

semiconductors. Journal of Philippine Magazine 22: 903-22.

Deal, D., Burd, M. and Braunstein, R. (1983). Raman and luminescence studies of

alkali borate tungstate glasses. Journal of Non-Crystalline Solids 54: 207–21.

Derenzo, S. E., Weber, M. J. and Klintenberg, M. K. (2002). Temperature dependence

of the fast, near-band-edge scintillation from CuI, HgI2, PbI

2, ZnO:Ga and CdS:

In. Nuclear Instrument methods in physics research A 486: 214-19.

Deshpande, S. (2005). Size dependency variation in lattice parameter and valency states

in nanocrystalline cerium oxide. Journal of Applied Physics Letters 87: 133113-

15.

Deshpande, V. K. and Taikar, R. N. (2010). Effect of cerium oxide addition on

electrical and physical properties of alkali borosilicate glasses. Journal of

Material Science Engineering B 172: 6-8.

De Sousa, N. C. A., De Araujo, M. T., Jacinto, C., Vermelho, M. V. D., Dantas, N. O.,

Santos, C. C. and Guedes, I. (2011). The role of TiO2 in the B2O3–Na2O–PbO–

Al2O3 glass system. Journal of Physics and Chemistry of solids 184: 3062-65.

Dimitrov, V., Arnaudov, M. and Dimitriev, Y. (1984). IR-spectral study of the effect of

WO3 on the structure of tellurite glasses. Monatshefte für Chemie 115: 987-91.

Dimitrova, V. and Komatsu, T. (1999). Electronic polarizability, optical basicity and

non-linear optical properties of oxide glasses. Journal of Non-Crystalline Solids

249: 160-79.

Dimitrov, V. and Komatsu, T. (2010). An interpretation of optical properties of oxides

and oxide glasses in terms of the electronic ion polarizability and average single

bond strength. Journal of University of Chemical Technology and Metallurgy

45: 219-50.

Doweidar, H., El-Damrawi, G., Moustafa, M. and Hassan, A. K. (1999a). Properties-

structure relations of ZnO-PbO-B2O3 glasses. Physics and Chemistry of Glasses

40: 252-56.

Page 7: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

139

Doweidar, H., Feller, S., Affatigato, M., Tischendorf, B., Ma, C. and Hammarsten, E.

(1999b). Density and Molar volume of extremely modified alkali silicate

glasses. Physics and Chemistry of Glasses 40: 339-44.

Doweidar, H., Gohar, I. A., Megahed, A. A. and EI-Damrawi, G. (1991a). Structure-

transport relationships in lead borate glasses containing V2O5. Solid State lonics

46: 275-81.

Doweider, H. and Saddeek, Y. B. (2009). FTIR and ultrasonic investigations on

modified bismuth borate glasses. Journal of Non-Crystalline Solids 355: 348-54.

Doweidar, H., Zeid, M. A. A. and El-Damrawy, G. M. (1991b). Effect of gamma

radiation and thermal treatment on some physical properties of ZnO-PbO-B2O3

glasses. Journal of Physics D: Applied Physics 24: 2222-28.

Dunken, H. and Doremus, R. H. (1987). Short time reactions of a na2o-cao-sio2 glass

with water and salt solutions. Journal of Non-Crystalline Solids 92: 61-72.

Durrani, S. M. A., Al-Kuhaili, M. F. and Bakhtiari, I. A. (2008). Carbon monoxide gas-

sensing properties of electron-beam deposited cerium oxide thin films. Journal

of Sensors and Actuators B: Chemical 134: 934-39.

Ebendorff-Heidepriem, H. and Ehrt, D. (2000). Formation and UV absorption of

cerium, europium and terbium ions in different valencies in glasses. Journal of

Optical Material 15: 7-25.

Eguchi, K., Setoguchi, T., Inoue, T. and Arai, H. (1992). Electrical properties of ceria-

based oxides and their application to solid oxide fuel cells. Solid State Ionics 52:

165-72.

ElBatal, F. H. and Marzouk, S. M. (2009). Interactions of gamma rays with tungsten-

doped lead phosphate glasses. Journal of Materials Science 44: 3061-71.

ElBatal, H. A., Abdelghany, A. M. and Ali, I. S. (2012a). Optical and FTIR studies of

CuO-doped lead borate glasses and effect of gamma irradiation. Journal of Non-

Crystalline Solids 358: 820-25.

Page 8: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

140

ElBatal, H. A., Abdelghany, A. M., Batal, F. H. and EzzElDin, F. M. (2012b). Gamma

rays interactions with WO3-doped lead borate glasses. Materials Chemistry and

Physics 134: 542-48.

El-Batal, H. A., Khalifa, F. A., Azooz, M. A. (2001). Gamma ray interaction,

crystallization and infrared absorption spectra of some glasses and glass-

ceramics from the system Li2O.B2O3.Al2O3. Indian Journal of Pure and Applied

Physics 39: 565-73.

El-Batal, H. A. R. and Ezz-El-Din, F. M. (1993). Interaction of γ-rays with some Alkali-

Alkaline-Earth Borate Glasses Containing Chromium. Journal of American

Ceramic Society 76: 523-29.

El-Damrawi, G. and El-Egili, K. (2001). Characterization of novel CeO2–B2O3 glasses,

structure and properties. Physica B: Condensed Matter 299: 180-86.

El-Deen, G. and Abd El-Raheem, Y. (2003). Studies on some lithium-borate glasses

containing Iron and Copper. Turk Journal of Physics 27: 255-62.

El-Falaky, G. E., Gaafar, M. S. and Abd El-Aal, N. S. (2012). Ultrasonic relaxation in

Zinc–Borate glasses. Current Applied Physics 12: 589-96.

Elliott, S. R. (1990). Physics of Amorphous Materials pp 1-481. Longman Science and

Technology, London.

El-Mallawany, R. A., El-Deen, L. M. and Elkholy, M. M. (1996). Dielectric properties

and polarizability of molybdenum tellurite glasses. Journal of Material Science

31: 6339-43.

Eloker, M. M., Talat, H. M., Elkashef, N. and Abd Al-Azeem, M. F. (2006). Optical

and Electrical Properties of Sodium borate Glass Containing V2O5. In: Proc. of

AIP. Modern trends in physics research. Vol 888, pp. 36-41. Cairo, Egypt.

Fajan, K. and Kreidle, N. (1948). Stability of Lead Glasses and Polarization of ions

Journal of American Ceramic Society 31: 105-14.

Farouk, H., Solimani, A. A., Aly, S. A., El-Deen, H. Z., Kashif, I. and Sanad, A. M.

(1996). Role of iron addition on structure and electrical and magnetic properties

Page 9: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

141

of lithium lead borate glasses. Materials Science and Engineering: B 38:

217–21.

Feller, S. A., Lower, N. and Affatigato, M. (2001). Density as probe of oxide glass

structure. Physics and Chemistry of Glasses 42: 240-46.

Feng, M., Pan, A. L., Zhang, H. R., Li, Z. A., Liu, F., Liu, H. W., Shi, D. X., Zou, B. S.

and Gao, H. J. (2005). Strong photoluminescence of nanostructured crystalline

tungsten oxide thin films. Applied Physics Letters 86: 141901-03.

Friebele, E. J. J. (1975). Radiation protection of fiber optic materials: Effect of cerium

doping on the radiation-induced absorption. Journal of Applied Physics Letter

27: 210-13.

Gaafar, M. S., Abd El-Aal, N. S., Gerges, O. W. and El-Amir, G. (2009). Elastic

properties and structural studies on some zinc-borate glasses derived from

ultrasonic, FT-IR and X-ray techniques. Journal of Alloys and Compound 475:

535-42.

Gahlot, P. S., Seth, V. P., Agarwal, A., Sanghi, S., Chand, P. and Goyal, D. R. (2005).

Role of PbO in EPR, optical properties and DC conductivity of vanadyl-doped

alkali lead borate glasses. Physica B: Condensed Matter 355: 44-53.

Galeener, F. L., Lucovsky, G. and Mikkelsen, J. C. (1980).Vibrational spectra and the

structure of pure vitreous B2O3. Journal of Physics Review B 22: 3983-90.

Gallup, J. and Dingwall, A. F. (1957). Properties of low-temperature solder glasses.

Bulletin of American Ceramic Society 36: 47-51.

Gandhi, Y., Sudhakar, K. S. V., Nagaarjuna, M. and Veeraiah, N. (2009). Influence of

WO3 on some physical properties of MO–Sb2O3–B2O3 (M = Ca, Pb and Zn)

glass system. Journal of Alloys and Compounds 485: 876-86.

George, H. B., Vira, C., Stehle, C., Meyer, S., Evers, S., Hogan, D., Feller, S. and

Affatigato, M. (1999). A structural analysis of the physical properties of bismuth

and lead based glasses. Physics and Chemistry of Glasses 40: 326-32.

Page 10: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

142

Ghoneim, N. A., ElBatal, H. A., Abdelghany, A. M. and Ali, I. S. (2011). Shielding

behavior of V2O5 doped lead borate glasses towards gamma irradiation. Journal

of Alloys and Compounds 509: 6913–19.

Giri Prakash, P. and Lakshmana Rao, J. (2005).VO2+

ions in zinc lead borate glasses

studied by EPR and optical absorption techniques. Spectrochimica Acta Part A:

Molecular and Biomolecular Spectroscopy 61: 2595–02.

Goldschmidt, V. M. (1926). Strifter Norske Videnskaps Akad. (Oslo), Geochemical

distribution laws of the elements. VIII. Researches on the structure and

properties of crystals. Matemal Naturv Klasse 8: 7-156.

Gondal, M. A., Hameed, A., Yamani, Z. H. and Suwaiyan, A. (2004). Laser induced

photo-catalytic oxidation/splitting of water over α-Fe2O3, WO3, TiO2 and NiO

catalysts: activity comparison. Chemical Physics Letters 385: 111-15.

Granqvist, C. G. (1995). Handbook of Inorganic Electrochromic Materials pp 1-673.

Amsterdam: Elsevier.

Granqvist, C. G., Azens, A., Hjelm, A., Kullman, L., Niklasson, G. A., Rönnow, D.,

Strømme Mattsson, M., Veszelei, M., and Vaivars, G. (1998). Recent advances

in electrochromics for smart windows applications. Solar Energy 63: 199-216.

Granqvist, C. G., Azens, A., Isidorsson, J., Kharrazi, M., Kullman, L., Lindström, T.,

Niklasson, G. A., Ribbing, C. G., Rönnow, D., Strømme Mattsson, M., and

Veszelei, M. (1997). Towards the smart window: progress in electrochromics.

Journal of Non-Crystalline Solids 218: 273-79.

Greaves, G. N. (1985). EXAFS and the structure of glass. Journal of Non-Crystalline

Solids, 71: 203-17.

Greaves, G. N. and Ngai, K. L. (1995). Reconciling ionic-transport properties with

atomic structure in oxide glasses. Physical Review B 52: 6358 – 80.

Green, M. and Kang, K. (1988). Electrochromic displays. Displays 9: 166–73.

Guo, H. and Qiao, Y. (2008). Preparation, structural and photoluminescent properties of

CeO2:Eu3+

films derived by Pechini sol–gel process. Applied Surface Science

254: 1961-65.

Page 11: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

143

György, E., Socol, G., Mihailescu, I. N., Ducu, C. and Ciuca, S. (2005). Structural and

optical characterization of WO3 thin films for gas sensor applications. Journal

of Applied Physics 97: 093527-30.

Hagg, G. (1935). The Vitreous State. Journal of Chemical Physics 3: 42-49.

He, T. and Yao, J. (2007). Photochromic materials based on tungsten oxide. Journal of

Materials Chemistry 17: 4547-57.

Heaton, H. M. and Moore, H. (1957). Glasses consisting mainly of the oxides of

elements of high atomic weight. II. Sources of the infrared absorption bands

observed in the transmission curves of the glasses. Journal of the Society of

Glass Technology 41: 28-71.

Hinton, B. R.W., Arnott, D. R. and Ryan, N. E. (1986). Cerium Conversion Coatings

for the corrosion protection of Aluminium. Materials Forum 9: 162-73.

Huang, C. and Cormack, A. N. (1990). The structure of sodium silicate glass. Journal of

Chemical Physics 93(11): 8180-86.

Huang, C. and Cormack, A. N. (1992). Structure and energetics in mixed-alkali-metal

silicate glasses from molecular dynamics. Journal of Material Chemistry 3: 281-

287.

Huang, M. H., Mao, S., Feick, H., Yan, H., Yiying, W., Kind, H., Weber, E., Russo, R.

and Yang, P. (2001). Room-Temperature Ultraviolet Nanowire Nanolasers.

Science 292: 1897-99.

Husung, R. D. and Doremus, R. H. (1990). The infrared transmission spectra of four

silicate glasses before and after exposure to water. Journal of Materials

Research 5: 2209-17.

Insiripong, S., Chimalawong, P., Kaewkhao J. and Limsuwan P. (2011). Optical and

Physical Properties of Bismuth Borate Glasses Doped with Dy3. American

Journal of Applied Sciences 8(6): 574-78.

Ishii, Y., Arai, k., Namikawa, H., Tanaka, M., Negishi, A. and Handa, T. (1987).

Preparation of Cerium-Activated Silica Glasses: Phosphorus and Aluminum

Page 12: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

144

Codoping Effects on Absorption and Fluorescence Properties. Journal of

American Ceramic Society 70: 72-77.

Jamnický, M., Znasik, P., Tunega, D. and Ingram, M. D. (1995). Glass formation and

structure in the system Cu2O-P2O5-MoO3. Journal of Non-Crystalline Solids

185: 151-58.

Johnson, J. C., Yan, H., Schaller, R. D., Haber, L. H., Saykally, R. J. and Yang, P.

(2001). Single Nanowire Lasers. Journal of Physical chemistry B 105:

11387-90.

Julien, C., Massot, M., Bulkanski, M., Krol, A. and Nazarewicz, W. (1989). Infrared

studies of the structure of borate glass. Material Science and Engineering

Bulletin 3: 307-15.

Kamitsos, E. I. (2003). Infrared studies of borate glasses. Physics and Chemistry of

Glasses 44: 79-87.

Kamitsos, E. I., Karakassides, M. A. and Chryssikos, G. D. (1986). A vibrational study

of Lithium-sulfate based fast ionic conducting borate glasses. Journal of Physics

and Chemistry 90: 4528-33.

Kamitsos, E. I., Karakassides, M. A. and Chryssikos, G. D. (1987). A vibrational study

of lithium borate glasses with high Li2O content. Physics and Chemistry of

Glasses 28: 203-09

Kamitsos, E. I., Karakassides, M. A. and Chryssikos, G. D. (1987).Vibrational spectra

of magnesium-sodium-borate glasses. 2. Raman and mid-infrared investigation

of the network structure. Journal of Physics and Chemistry 91: 1073-79.

Kamitsos, E. I., Patsis, A. P., Karakassides, M. and Chryssikos, G. D. (1989). Structure

of borate glasses. 1. Raman-study of Cesium, Rubidium, and Potassium borate

glasses. Physical Chemistry of Solids 30: 229-34.

Kamitsos, E. I., Patsis, A. P., Karakassides, M. A. and Chryssikos, G. D. (1990).

Infrared reflectance spectra of lithium borate glasses. Journal of Non-Crystalline

Solids 126: 52-67.

Page 13: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

145

Kamitsos, E. I., Patsis, A. P. and Chryssikos, G. D. (1993). Infrared reflectance

investigation of alkali diborate glasses. Journal of Non-Crystalline Solids 152:

246-57.

Kanehisa, M. A. and Elliot, R. J. (1989).Vibrations of boron oxide glass. Material

Science and Engineering B 3: 163-66.

Kapoor, S., George, H. B., Betzen, A., Affatigato, M. and feller, S. (2000). Physical

properties of barium borate glasses determined over a wide range of

composition. Journal of Non-Crystalline Solids 270: 215-22.

Karthikeyan, B. and Mohan, S. (2003). Structural, optical and glass transition studies on

Nd3+

-doped lead bismuth borate glasses. Physica B: Condensed Matter 334:

298-02

Kashif, I., Soliman, A. A., Farouk, H., El-Shorpagy, M. and Sanad, A. M. (2008). Effect

of copper addition on density and magnetic susceptibility of lithium borate

glasses. Physica B: Condensed Matter 403: 3903-06.

Kim, J. R., Choi, G. K., Yim, D.K., Park, J. S. and Hong, K. S. (2006).Thermal and

dielectric properties of ZnO-B2O3-MO3 glasses (M = W, Mo). Journal of

Electroceramics 17: 65-69.

Kim, N. J., La, Y. H., Im, S. H., Han, W. T. and Ryu, B. K. (2009). Effect of ZnO on

physical and optical properties of bismuth borate glasses. Electronic Materials

Letters 5: 209-12.

Kim, S. H. and Yoko, T. (1995). Nonlinear Optical Properties of TeO2-Based Glasses:

MOx-TeO2 (M = Sc, Ti, V, Nb, Mo, Ta, and W) Binary Glasses. Journal of

American Ceramic Society 78: 1061-65.

Kordes, E. (1939). Die Ermittlung von Atomabstanden aus der Lichtbrechung.

Zeitschrift fur Physikalische Chemie (B) 44:249-60.

Korzhik, M. V., and Trower, W. P. J. (1995). Origin of scintillation in cerium-doped

oxide crystals. Journal of Applied Physics Letters 66: 2327-29.

Page 14: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

146

Kreidl, N. J. (1990). Recent applications of glass science. Journal of Non-Crystalline

Solids 123: 377-84.

Krogh-Moe, J. (1962a). The crystal structure of lithium diborate, Li2O.2B2O3. Acta

Crystallographica 15: 190-93.

Krogh-Moe, J. (1962b). Structural interpretation of melting point depression in the

Sodium borate system. Physics and Chemistry of Glasses 3: 101-10.

Krogh-Moe, J. (1965a). Interpretation of the infra-red spectra of boron oxide and alkali

borate glasses. Physics and Chemistry of Glasses 6: 46-54.

Krogh-Moe, J. (1965b). The crystal structure of silver tetraborate Ag2O.4B2O3. Acta

Crystallographica 18: 77-81.

Krogh-Moe, J. (1969a). Interpretation of the infra-red spectra of boron oxide and alkali

borate glasses. Physics and Chemistry of Glasses 6: 46-54.

Krogh-Moe, J. (1969b). The structure of vitreous and liquid boron oxide. Journal of

Non-Crystalline Solids 1: 269-84.

Kucheyev, S. O., Williams, J. S., Jagadish, C., Evans, C., Nelson, A. J. and Hamza,

A.V. (2003). Ion-beam-produced structural defects in ZnO. Physical Review B

67: 094115-11.

Kudama, M. (1991). Ultrasonic velocity in potassium borate glasses. Journal of Non-

Crystalline Solids 127: 65-74.

Kundu, V., Dhiman, R. L., Maan, A. S. and Goyal, D. R. (2009). Optical and

spectroscopic studies of ZnO–Bi2O3–B2O3 Glasses. Journal of Optoelectronics

and Advanced Materials 11: 1595-1600.

Lacy, E. D. (1963). Aluminium in glasses and melts. Physics Chemistry of glasses 4:

234-38.

Lakshminarayana, G. and Buddhudu, S. (2005). Spectral analysis of Cu2+

: B2O3–ZnO

PbO glasses. Spectrochimica Acta Part A: Molecular and Biomolecular

Spectroscopy 62: 364-71.

Page 15: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

147

Lakshminarayana, G. and Buddhudu, S. (2006). Spectral analysis of Mn2+

, Co2+

and

Ni2+

: B2O3–ZnO–PbO glasses. Spectrochimica Acta Part A: Molecular and

Biomolecular Spectroscopy 63: 295-304.

Laorodphana, N., Namwongb, P., Thiemsorna, W., Jaimasitha, M., Wannagonc, A. and

Chairuangsria, T. (2009). A low silica, barium borate glass–ceramic for use as

seals in planar SOFCs. Journal of Non-Crystalline Solids 355: 38-44.

Laroche, M., Girard, S., Moncorgé, R., Bettinelli, M., Abdulsabirov, R. and Semashko,

V. (2003). Beneficial effect of Lu3+

and Yb3+

ions in UV laser materials. Optical

Materials 22: 147-54.

Lebedev, A. A. (1910). Trans. Optical Instruments Petrograd. 10: 2.

Lee, S. H., Cheong, H. M., Liu, P., Smith, D., Edwin, C. E., Mascanrenhas, A., Pitts, J.

R. and Deb, S. K. (2000). Gasochromic mechanism in a-WO3 thin films based

on Raman spectroscopic studies. Journal of Applied Physics 88: 3076-78.

Leland, J. K. and Bard, A. J. (1987). Preparation and electronic properties of monolayer

tungsten oxide on silica particles. Journal of Chemical Physics Letters 139:

453-56.

Lezal, D., Pedlikova, J., Kostka, P., Bludska, J., Poulain, M. and Zavadil, J. (2001).

Heavy metal oxide glasses: preparation and physical properties. Journal of Non-

Crystalline Solids 284: 288-95.

Li, H., Lin, H., Chen, W. and Luo, L. (2006). IR and Raman investigation on the

structure of (100-x) [0.33B2O3–0.67ZnO]–xV2O5 glasses. Journal of Non-

Crystalline Solids 352: 3069-73.

Lide, D.R. (2004). CRC Handbook of Chemistry and Physics, 84th edition pp 1-2475

CRC Press, Boca Raton, Fl.

Limkitjaroenporn, P., Kaewkhao, J., Limsuwan, P. and Chewpraditkul, W. (2011).

Physical, optical, structural and gamma-ray shielding properties of lead sodium

borate glasses. Journal of Physics and Chemistry of Solids 72: 245-51.

Page 16: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

148

Llobet, E., Molas, G., Molinàs, P., Calderer, J., Vilanova, X., Brezmes, J., Sueiras, J. E.

and Correig, X. (2000). Fabrication of Highly Selective Tungsten Oxide

Ammonia Sensors. Journal of Electrochemical Society 147: 776-79.

Look, D. C., Claflin, B. Y., Alivov, I. and Park, S. J. (2004). The future of ZnO light

emitters. Physics Status Solid A 201: 2203-12.

Lucacel, R. C. and Ardelean, I. (2007). FT-IR and Raman study of silver lead borate-

based glasses. Journal of Non-Crystalline Solids 353: 2020-24.

Lucacel, R. C., Marcus, C., Timar, V. and Ardelean, I. (2007). FT-IR and Raman

spectroscopic studies on B2O3–PbO–Ag2O glasses doped with manganese ions.

Solid State Sciences 9: 850-54.

MacDowell, J. F. (1990). Aluminoborate Glass-Ceramics with Low Thermal

expansivity. Journal American Ceramic Society. 73: 2287-92.

Mansour, E. (2011). Structure and electrical conductivity of new Li2O–CeO2–B2O3

glasses. Journal of Non-Crystalline Solids 357: 1364-69.

Mansour, E., El-Damrawi, G. M., Moustafa, Y. M., Abd El-Maksoud, S. and Doweidar,

H. (2001). Polaronic conduction in barium borate glasses containing iron oxide.

Physica B: Condensed Matter 293: 268-75.

Martín, D. M., Villegas, M. A., Gonzalo, J. and Navarro, J. M. F. (2009).

Characterisation of glasses in the TeO2–WO3–PbO system. Journal of Eurpion

Ceramic Society 29: 2903-13.

McSwain, B. D., Borreli, N. F. and Gouq-Jen, S. (1963). The effect of composition and

temperature on the ultra-violet absorption of glass. Physics and Chemistry of

Glasses 4: 1-10.

Mekki, A., Khattak, G. D., Holland, D., Chinkhota, M. and Wenger, L. E. (2003).

Structure and magnetic properties of vanadium–sodium silicate glasses. Journal

of Non-Crystalline Solids 318: 193-01.

Minami, T. (2005). Transparent conducting oxide semiconductors for transparent

electrodes. Semiconductor Science and Technology 20: S35-S40.

Page 17: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

149

Mmrc. Introduction to Fourier Transform Infrared Fourier transforms spectroscopy.

(2001). http:// mmrc.caltech.edu/FTIR/FTIRintro.pdf.

Montani, R. A., Levy, M. and Souquet, J. L. (1992). An electrothermal model for high-

field conduction and switching phenomena in TeO2-V2O5 glasses. Journal of

Non-Crystalline Solids 149: 249-56.

Moses, W. W., Derenzo, S. E. Fyodorov, A., Korzhik, M., Gektin, A., Minkov, B. and

Aslanov, V. (1995). LuAlO3: Ce-a high density, high speed scintillator for

gamma detection. IEEE Transactions on Nuclear Science 42: 275-79.

Motek, S. G., Yawale, S. P. and Yawale, S. S. (2002). Infrared spectra of zinc doped

lead borate glasses. Bulletin of Material Sciences 25: 75-8.

Mott, N. F. (1968). Conduction in glasses containing transition metal ions. Journal of

Non-Crystalline Solids 1: 1-17.

Moustafa, Y. M., Hassan, A. K., E1-Damrawi, G. and Yevtushenko, N. G. (1996).

Structural properties of V2O5-Li2O-B2O3 glasses doped with copper oxide.

Journal of Non-Crystalline Solids 194: 34-40.

Murata, T., Sato, M., Yoshida, H., and Morinaga, K. (2005). Compositional dependence

of ultraviolet fluorescence intensity of Ce3+

in silicate, borate, and phosphate

glasses. Journal of Non-Crystalline Solids 351: 312-16.

Niklasson, G. A, and Granqvist, C. G. (2007). Electrochromics for smart windows: thin

films of tungsten oxide and nickel oxide, and devices based on these. Journal of

Material Chemistry 17: 127-56.

Ozgür, U., Alivov, Y. I., Liu, C., Teke, A., Reshchikov, M. A., Dogan, S., Avrutin, V.,

Cho, S.J. and Morkoc, H. (2005). A comprehensive review of ZnO materials and

devices. Journal of Applied Physics 98: 041301-103.

Pan, Z., Morgan, S. H. and Long, B. H. (1995). Raman scattering cross-section and non-

linear optical response of lead borate glasses. Journal of Non-Crystalline Solids

185: 127-34.

Page 18: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

150

Park, S. H. (2007). Electronic and Optical Properties of ZnO/ZnMgO Quantum Well

Lasers with Piezoelectric and Spontaneous Polarizations. Journal of Korean

Physical Society 50: 16-20.

Pascuta, P, Borodi, G. and Culea, E. (2008). Influence of europium ions on structure

and crystallization properties of bismuth borate glasses and glass ceramics.

Journal of Non-Crystalline Solids 354: 5475-79.

Pascuta, P. and Culea, E. (2012). Effect of gadolinium ions on the structure and

magnetic properties of zinc-borate glasses and glass ceramics. Journal of

Materials Science 47: 2345-51.

Pattanaik, A. K. and Srinivasan, A. (2003). Electrical and optical properties of

amorphous PbxIn25-xSe75 films with a dispersion of nanocrystallites. Journal of

Optoelectronic Advance Materials 5: 1161-67.

Paul, A., Chattopadhyay, A. K. and Basu, C. (1998). Ultrasonic investigations of PbO–

V2O5–P2O5 glass. Journal of Applied Physics 84: 2513-19.

Pauling, L. (1945). The Nature of the Chemical Bond, Cornell University Press, Ithica,

New York.

Pavani, P. G., Sadhana, K. and Mouli, V. C. (2011). Optical, physical and structural

studies of boro-zinc tellurite glasses. Physica B: Condensed Matter 406:

1242-47.

Pisarski, W. A., Pisarska, J., Dominiak-Dzik, G. and Ryba-Romanowski, W. (2009).

Transition metal (Cr3+

) and rare earth (Eu3+

, Dy3+

) ions used as a spectroscopic

probe in compositional-dependent lead borate glasses. Journal of Alloys and

Compounds 484: 45-49.

Pisarski, W. A., Goryczka, T., Wodecka-Duś, B., Płońska, M., and Pisarska, J. (2005a).

Structure and properties of rare earth-doped lead borate glasses. Journal of

Materials Science and Engineering B 122: 94-99.

Pisarska, J., Lisiecki, R., Ryba-Romanowski, W., Domniak-Dzik, G. and Pisarski, W.

A. (2008). Up-converted luminescence in Yb–Tm co-doped lead fluoroborate

glasses. Journal of Alloys and Compounds 451: 226-28.

Page 19: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

151

Pisarski, W. A., Pisarska, J., and Romanowski, W. R. (2005b). Structural role of rare

earth ions in lead borate glasses evidenced by infrared spectroscopy: BO3↔BO4

conversion. Journal of Molecular Structure 744-747: 515-20.

Poirier, G., Messaddeq, Y., Ribeiro, S. J. L. and Poulain, M. (2005). Structural study of

tungstate fluorophosphate glasses by Raman and X-ray absorption spectroscopy.

Journal of Solid State Chemistry. 178: 1533-38.

Porai-Koshits, E. A. (1990). Genesis of concepts on structure of inorganic glasses.

Journal of Non-Crystalline Solids 123: 1-13

Prakash Singh, S., Chakradhar, R. P. S., Rao, J. L. and Karmakar, B. (2010). EPR,

FTIR, optical absorption and photoluminescence studies of Fe2O3 and CeO2

Doped ZnO–Bi2O3–B2O3 glasses. Journal of Alloys and Compounds 493:

256-62.

Qiu, H. H., Kudo, M. and Sakata, H. (1997). Synthesis and electrical properties of

Fe2O3-MoO3-TeO2 glasses. Material Chemistry and Physics 51: 233-38.

Qiu, j., Igarashi, H. and Makishima, A. (2005). Long-lasting phosphorescence in Mn2+

:

Zn2GeO4 crystallites precipitated in transparent GeO2–B2O3–ZnO glass-eramics.

Science and Technology of Advanced Materials 6: 431-34

Rada, M., Rada, S. and Culea, E. (2011). Structural properties of the tungsten–lead–

borate glasses before and after laser irradiation. Journal of Non-Crystalline

Solids 357: 2024-28.

Rada, M., Rada, S., Pascuta, P. and Culea, E. (2010). Structural properties of

molybdenum-lead-borate glasses. Spectrochimica Acta Part A: Molecular and

Biomolecular Spectroscopy 77: 832-37.

Rada, S., Pascuta, P., Culea, M., Maties, V. Rada, M., Barlea, M. and Culea, E. (2009).

The local structure of europium–lead-borate glass ceramics. Journal of

Moleculer Structure 924-926: 89-92.

Raghavendra Rao, T., Krishna, Ch. R., Thampy, U. S. U., Reddy, Ch. V., Reddy, Y. P.,

Rao, P. S. and Kumar, R. V. S. S. N. R. (2011). Effect of Li2O content on

Page 20: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

152

physical and structural properties of vanadyl doped Alkali zinc borate glasses.

Physica B: Condensed Matter 406: 2132-37.

Rajyasree, Ch., Teja, P. M. V., Murthy, K. V. R. and Rao, D. K. (2011). Optical and

other spectroscopic studies of lead, zinc bismuth borate glasses doped with CuO.

Physica B: Condensed Matter 406: 4366-72.

Rama Kumar, R., Bhatnagar, A. K. and Lakshmana Rao, J. (2002). EPR of vanadyl ions

in alkali lead borate glasses. Materials Letters 57: 178-82.

Rani, S., Anshu, S., Agarwal, A., Kishore, N. and Seth, V. P. (2008). Effect of

ZnO/CdO on the structure and electrical conductivity In Li2O-MO-Bi2O3-B2O3

glasses (M = Zn, cd). Journal of Physics and Chemistry of Solids 69: 1855-60.

Rao, P. V., Satyanarayana, T., Reddy, M. S., Gandhi, Y. and Veeraiah, N. (2008).

Nickel ion as a structural probe in PbO–Bi2O3–B2O3 glass system by means of

spectroscopic and dielectric studies. Physica B: Condensed Matter 403: 3751-

59.

Rao, R. B. and Veeraiah, N. (2004). Study on some physical properties of Li2O-M-

B2O3: V2O5 glasses. Physica B: Condensed Matter 348: 256-71.

Rao, T. R., Krishna, C. R., Venkata, R. C., Thampy, U .S. U, Reddy, Y. P., Rao, P. S.

and Ravikumar, R. V. S. S. N. (2011a). Mixed alkali effect and optical

properties of Ni2+

doped 20ZnO + xLi2O + (30 − x) Na2O + 50B2O3 glasses.

Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 79:

1116-22.

Rao, T. R., Reddy, C. V., Krishna, C. R., Thampy, U. S. U., Raju, R. R., Rao, P. S. and

Ravikumar, R.V.S.S.N. (2011b). Correlation between physical and structural

properties of Co2+

doped mixed alkali zinc borate glasses. Journal of Non-

Crystalline Solids 357: 3373-80.

Rawson, H. (1967). Inorganic Glass Forming Systems, Academic Press, London.

Reddy, C. N and Chakradhar, R. P. S (2007). Elastic properties and spectroscopic

studies of fast ion conducting Li2O-ZnO-B2O3 glass system. Materials Research

Bulletin 42: 1337-47.

Page 21: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

153

Reddy, C. N., Damle, R. and Anavekar, R. V. (2006). Spectroscopic and structural

studies on calcium borate glasses containing V2O5. Physics and Chemistry of

Glasses-European Journal of Glass Science and Technology 47: 34-40.

Reddy, C. N., Gowda, V. C. V. and Chakradhar, R. P. S. (2008). Elastic properties and

structural studies on lead–boro–vanadate glasses. Journal of Non-Crystalline

Solids 354: 32-40.

Reddy, M. S., Raju, G. N., Nagarjuna, G. and Veeraiah, N. (2007). Structural influence

of aluminium, gallium and indium metal oxides by means of dielectric and

spectroscopic properties of CaO–Sb2O3–B2O3 glass system. Journal of Alloys

and Compounds 438: 41-51.

Regan, M. and Drake, C. F. (1971). High Current glass switches. Materials Research

Bulleitin 6: 487-90.

Rivoalen, L., Revcolevschi, A., Livage, J. and Collongues, R. (1976). Amorphous

vanadium pentoxide. Journal of Non-Crystalline Solids 21: 171-79.

Saddeek, Y. B., Abousehly, A. M., and Hussien, S. I. (2007). Synthesis and several

features of the Na2O-B2O3-Bi2O3-MoO3 glasses. Journal of Physics D: Applied.

Physics 40: 4674-81.

Saddeek, Y. B., Aly, K. A. and Bashier, S. A. (2010). Optical study of lead borosilicate

glasses. Physica B: Condensed Matter 405: 2407-12.

Sadeek, Y. B., Shaaban, E. R., Moustafa, E. S. and Moustafa, H. M. (2008).

Spectroscopic properties, electronic polarizability, and optical basicity of Bi2O3–

Li2O–B2O3 glasses. Physica B: Condensed Matter 403: 2399-07.

Saito, Y., Uchida, S., Kubo, T. and Segawa, H. (2008). Energy-Storable Dye-Sensitized

Solar Cells with Tungsten Oxide Charge-Storage Electrode. ECS Transactions

16: 27-34.

Salagram, M., Prasad, V. K. and Subramanyam, K. (2002). Optical band gap studies on

xPb3O4–(1−x) P2O5 lead [(II, IV)] phosphate glasses. Optical Materials 18:

367-72.

Page 22: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

154

Saleh, M. N. and Gawish, M. M. (1980). Conduction models of semiconducting

calcium borate glasses containing iron oxide. Journal of Applied Physics 51:

459-65.

Salem, S. M., Antar, E. M. and Mohamed, E. A. (2011). Structural and dielectric

properties of Li2O-ZnO-BaO-B2O3-CuO glass. Journal of Material Science 46:

1095-02.

Sanjay, Kishore, N. and Agarwal, A. (2009). Investigation of structural, optical and

transport properties of MoO3–PbO–B2O3 glasses. Journal of Alloys and

Compounds 487: 52-7.

Sayers, D. E., Stern, E. A. and Lytle, F. W. (1970). Advances in X-ray Analysis, Plenum

press, New York, 13: 248-271.

Scholze, H. (1991). Glass: Nature, Structure and Properties pp 1-454. Springer-Verlag,

New York.

Sears, V. F. (1992). Neutron scattering length and cross section. Neutrons News 3:

29-37.

Secrist, D. R. and Mackenzie, J. D. (1960). Modern Aspects of the Vitreous State Vol. 3,

Butterworths, London.

Selvaraj, U. and Rao, K. (1984). Infrared spectroscopic study of mixed-alkali effect in

borate glasses. Spectrochimico Acta 40A: 1081-85.

Seshasayee, M. and Muruganandum, K. (1998). Molecular dynamic study of V2O5

Glasses. Solid state communication 105: 243-46.

Seth, V. P., Yadav, A. and Gupta, S. K. (1988). Electrical conductivity and ESR of

lithium borate glasses containing mixed transition metal oxides. Journal of

Materials Science 23: 3495-500.

Shaltout, I., Tang, Y., Braunstein, R. and Shaisha, E. E. (1996). FTIR spectra and some

optical properties of tungstate-tellurite glasses. Journal of Physics Chemistry of

Solids 57: 1223-30.

Page 23: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

155

Sharma, G., Singh, K., Manupriya, Mohan, S., Singh, H. and Bindra, S. (2006). Effects

of gamma irradiation on optical and structural properties of PbO–Bi2O3–B2O3

glasses. Radiation Physics and Chemistry 75: 959-66.

Shelby, J. E. (1997). Introduction to glass science and technology pp 1-250. The Royal

Society of Chemistry, Cambridge.

Shenkai, N., Bradt, R. C. and Rindone, G. E. (1982). Elastic Modulus and Fracture

Toughness of Ternary PbO-ZnO-B2O3. Glasses. Journal of American Ceramic

Society 65: 123-26.

Sheoran, A., Agarwal, A., Sanghi, S., Seth, V. P., Gupta, S. K. and Arora, M. (2011).

Effect of WO3 on EPR, structure and electrical conductivity of vanadyl doped

WO3-M2O-B2O3 (M=Li, Na) glasses. Physica B: Condensed Matter 406:

4505-11.

Sidek, H. A. A., Hamezan, M., Zaidan, A. W., Talib, Z. A. and Kaida, K. (2005).

Optical Characterization of Lead-Bismuth Phosphate Glasses. American Journal

of Applied Science 2: 1266-69.

Sidek, H. A. A., Rosmawati, S., Talib, Z. A., Halimah, M. A. and Daud, W. M. (2009).

Synthesis and Optical Properties of ZnO-TeO2 Glass System. American Journal

of Applied Science 6: 1489-94.

Sindhu, S., Sanghi, S., Agarwal, A., Kishore, N. and Seth, V. P. (2007). Effect of V2O5

on structure and electrical properties of zinc borate glasses. Journal of Alloys

and Compound 428: 206-13.

Sindhu, S., Sanghi, S., Rani, S., Agarwal, A. and Seth V. P. (2008). Modification of

structure and electrical conductivity of cadmium borate glasses in the presence

of V2O5. Materials Chemistry and Physics 107: 236-43.

Sindhu, S., Sanghi, S., Rani, S., Agarwal, A., Seth, V. P. and Kishore, N. (2005). The

role of V2O5 in the modification of structural, optical and electrical properties of

vanadium barium borate glasses. Physica B: Condensed Matter 365: 65-75.

Page 24: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

156

Singh, D., Singh, K., Singh, G., Bajwa, B. S., Mudahar, G. S., Singh, D. P., Manupriya,

Arora, M. and Dangwal, V. K. (2008). Optical and structural properties of Li2O–

Al2O3–B2O3 glasses before and after γ-irradiation effects. Journal of Applied

Physics 104: 103515-19.

Singh, G. P. and Singh, D. P. (2011a). Effect of WO3 on structural and optical

properties of CeO2–PbO–B2O3 glasses. Physica B: Condensed Matter 406:

640-44.

Singh, G. P. and Singh, D. P. (2011b). Spectroscopic study of ZnO doped CeO2–PbO–

B2O3 glasses. Physica B: Condensed Matter 406: 3402-05.

Singh, G. P., Kaur, P., Kaur, S. and Singh, D. P. (2011a). Role of WO3 in structural and

optical properties of WO3–Al2O3–PbO–B2O3 glasses. Physica B: Condensed

Matter 406: 4652-56.

Singh, G. P., Kaur, S., Kaur, P., Kumar, S. and Singh, D. P. (2011b). Structural and

Optical properties of WO3–ZnO–PbO–B2O3 glasses. Physica B: Condensed

Matter 406: 1890-93.

Singh, G. P., Kaur, S., Kaur, P. and Singh, D. P. (2012). Modification in structural and

optical properties of ZnO, CeO2 doped Al2O3–PbO–B2O3 glasses. Physica B:

Condensed Matter 407: 1250-55.

Singh, K. and Ratnam, J. S. (1988). Electrical conductivity of the Li2O-B2O3 system

with V2O5. Solid State Ionics 31: 221-26.

Smekel, A. (1951). On the structure of glass. Journal of Society of Glass Technology

35: 392-94.

Stanworth, J. E. (1950). Physical Properties of Glass Vol. 62, pp 1-224. Oxford

Clarendon Press, London.

Stefan, R., Culea, E. and Pascuta, P. (2012a). The effect of copper ions addition on

structural and optical properties of zinc borate glasses. Journal of Non-

Crystalline Solids 358: 839-46.

Page 25: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

157

Stefan, R., Pascuta, P., Popac, A., Raitac, O., Indreac, E. and Culea, E. (2012b). XRD

and EPR structural investigation of some zinc borate glasses doped with iron

ions. Journal of Physics and Chemistry of Solids 739: 221-26.

Stoch, L. and Sroda, M. (1999). Infrared spectroscopy in the investigation of oxide

glasses structure. Journal of Molecular Structure 511–512: 77-84.

Sumalatha, B., Omkaram, I., Rajavardhana Rao, T. and Linga Raju, C. (2011a).

Alkaline earth zinc borate glasses doped with Cu2+

ions studied by EPR, optical

and IR techniques. Journal of Non-Crystalline Solids 357: 3143-52.

Sumalatha, B., Omkaram, I., Rao, T. R. and LingaRaju, C. (2011b). The effect of V2O5

on alkaline earth zinc borate glasses studied by EPR and optical Absorption.

Journal of Molecular Structure 1006: 96-03.

Sun, K. H. (1947). Fundamentals of glass formation. Journal of American Ceramic

Society 30: 9277-81.

Tammann, G. (1933). The Glassy State (Der Glaszustand). Leopold Voss, publisher, pp

123.

Tanabe, T. (1999). Optical transitions of rare earth ions for amplifiers: how the local

structure works in glass. Journal of. Non Crystalline Solids 259: 1-9.

Tarte, P. (1967). Infrared spectra of inorganic aluminates and characteristic vibrational

frequencies of AlO4 tetrahedra and AlO6 octahedra. Spectrochimica Acta, Part

A: Molecular and Biomolecular Spectroscopy 23(7): 2127-43.

Tauc, J. (1987). Band Tails in Amorphous Semiconductors. Journal of Non-Crystalline

Solids 97-98: 149-54.

Terashima, K., Shimato, T. H. and Tokyo, T. (1997).Structure and nonlinear optical

properties of PbO–Bi2O3–B2O3 glasses. Physics Chemistry of Glasses 38:

211-17.

Tsukazaki, A., Kubota, M., Ohtomo, A., Onuma, T., Ohtani, K., Ohno, H., Chichibu,

S.F. and Kawasaki, M. (2005). Japanese Journal of Applied Physics 44:

L643-L645.

Page 26: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

158

Uhlmann, D. R. and Hinnon, Y. (1983). The Formation of Glasses pp. 1-47. in Glass:

Science and Technology, Edited by D.R. Uhlmann and N.J. Kreidl. Academic

Press, New York, 1983.

Urbach, F. (1953). The Long-Wavelength Edge of Photographic Sensitivity and of the

Electronic Absorption of Solids. Physics Review letters 92: 1324-5.

Varshneya, A. K. (1994). Fundamentals of inorganic glasses. pp 1-570. Academic

Press, Inc., San Diego, CA.

Vessal, B., Greaves, G. N., Martin, P. T., Chadwick, A., Mole, R. And Houde-Walter,

S. (1992). Cation micro segregation and ionic mobility in mixed alkali glasses.

Nature 356 (6369): 504-06.

Waclawska, I. (1995). Glass transition effect of amorphous borates. Thermochimica

Acta 269-270: 457-64.

Warren, B. E. (1933). X-ray Diffraction of Vitreous Silica. Zeitschift fur

Kristallographie 86: 349-58.

Warren, B. E. (1934). X-ray determination of the structure of glass. Journal of

American Ceramic Society. 17: 249-54.

Warren, B. E., Krutter, H. and Morningstar, O. (1936). Fourier analysis of X-Ray

Patterns of Vitreous SiO2 and B2O3. Journal of American Ceramic Society 19:

202-06.

Warren, B. E., Robinson, B. S. and Biscoe, J. (1939). X-ray study of boric oxide-silica

glass. Journal of American Ceramic Society 22: 180-84.

Weber, M. J. (1973). Non radiative decay from 5d states of rare earths in crystals. Solid

State Communications 12: 741-44.

Weinberg, M. C. (1991). On the analysis of non-isothermal thermo analytic

crystallization experiments. Journal of Non-Crystalline Solids 127(2): 151-58.

Winick, H., Doniach, S. (eds) (1980), Synchrotron Radiation Research, Plenum Press,

New York.

Page 27: REFERENCES - Information and Library Network Centreshodhganga.inflibnet.ac.in/.../23415/20/20_references.pdf · 2018-07-09 · Gas sensing properties of the mixed molybdenum tungsten

159

Yamane, M. and Asahara, Y. (2000). Glasses for Photonics pp 1-267. Cambridge

University Press, UK.

Yew, E. T., Hua, W. A., Wong, P. S., Jan, N. A. M., Ibrahim, Z. and Rosli. H. (2012).

Structural Study of Antimony Borate Glass System Doped with Transition Metal

Ions Using Infrared and Raman Spectroscopy. Advanced Materials Research

501: 51-55.

Zachariasen, W. H. (1932). The atomic arrangement in glass. Journal of American

Ceramic Society 54: 3841-51.

Zachariasen, W. H. (1935). The Vitreous State. Journal Chemical Physics 3: 162-63.

Zhong, J. and Bray P. J. (1989). Change in boron coordination in alkali borate glasses,

and mixed alkali effects, as elucidated by NMR. Journal of Non-Crystalline

Solid 111: 67-76.

Zhou, L., Lin, H., Chen, W. and Luo, L. (2008). IR and Raman investigation on the

structure of (100-x)B2O3-x[0.5 BaO–0.5ZnO] glasses. Journal of Physics and

Chemistry of Solids 69: 2499-02.