The Influence of La Doping on Structural, Optical …
379
19. Khyzhun OY, Solonin YM, Dobrovolsky VD (2001) Electronic structure of hexagonal tungsten
trioxide: XPS, XES, and XAS studies. J Alloys Comp 320:1–6
20. Barret EP, Joyner LG, Halenda PP (1951) The determination of pore volume and area distributions in porous substances. I. Computations from nitrogen isotherms. J Am Chem Soc
73(3):373–380
21. Korzhak AV, Ermokhina NI, Stroyuk OL, Bukhtiyarov VK, Raevskaya AE, Litvin VI, Kuchmiy
SYa, Ilyin VG, Manorik PA (2008) Photocatalytic hydrogen evolution over mesoporous
TiO 2 /Metal nanocomposites. J Photochem Photobiol A 198(2–3):126–134
22. Wu H-H, Deng L-X, Wang S-R, Zhu B-L, Huang W-P, Wu S-H, Zhang S-M (2010) The
preparation and characterization of La doped TiO 2 nanotubes and their photocatalytic activity.
J Dispers Sci Technol 31:1311–1316
23. Zhu X, Pei L, Zhu R, Jiao Y, Tang R, Feng W (2018) Preparation and characterization of Sn/La
co-doped TiO 2 nanomaterials and their phase transformation and photocatalytic activity. Sci
Rep 8(1):12387
24. Anandan S, Ikuma Y, Murugesan V (2012) Highly active rare-earth-metal La-doped photocatalysts: fabrication, characterization, and their photocatalytic activity. Int J Photoen 2012(Article
ID 921412):10
25. Gerasumenko YuV, Logacheva VA, Babushkina EV, Khoviv AM (2010) Structure and optical
properties of titanium dioxide films, modified with lanthanum. Condensed Matter Interphases
12(4):348–354. (in Russian)
26. Iwasaki M, Masaki H, Ito S, Park W (2007) Fabrication of La 2 O 3 -TiO 2 -SiO 2 system glass
derived from a sol-gel process. J Kor Ceram Soc 44(3):137–141
27. Lowell S, Shields JE (1998) Powder surface area and porosity. Chapman & Hall, London
28. Sing KSW, Everett DH, Haul RAW, Moscou L, Pierotti RA, Rouquerol J, Siemieniewska
T (1985) Reporting physisorption data for gas/solid systems with special reference to the
determination of surface area and porosity. Pure Appl Chem 57(4):603–619
29. Ansón-Casaos A, Tacchini I, Unzue A, Martínez MT (2013) Combined modification of a TiO 2
photocatalyst with two different carbon forms. Appl Surf Sci 270:675–684
30. Qu ZW, Kroes GJ (2006) Theoretical study of adsorption of O( 3 P) and H 2 O on the rutile
TiO 2 (110) surface. J Phys Chem B 110(46):23306–23314
31. Fateley WG, Dollish FR, McDevitt NT, Bentley FF (1972) Infrared and raman selection rules
for molecular and lattice vibrations. Wiley-Interscience, New York
32. Davydov A (1984) IK-Spektroskopiya v Khimii Poverkhnosti Okislov. Nauka, Novosibirsk.
(in Russian)
33. Bezrodna T, Puchkovska G, Shymanovska V, Baran J, Ratajczak H (2004) IR-analysis of
H-bonded H 2 O on the pure TiO 2 surface. J Mol Struct 700:175–181
34. Nakamoto K (1963) Infrared spectra of inorganic and coordination compounds. Wiley, New
York, London, 328 p
35. Bender ET, Katta P, Lotus A, Park SJ, Chase GG, Ramsier RD (2006) Identification of CO 2
sequestered in electrospun metal oxide nanofibers. Chem Phys Lett 423(4):302–305
36. Davies LE, Bonini NA, Locatelli S, Gonzo EE (2005) Characterization and catalytic activity
of zirconium dioxide prepared by sol-gel. Latin Am Appl Res 35:23–28
37. Cheng CH, Lehmann J, Thies JE, Burton SD, Engelhard MH (2006) Oxidation of black carbon
by biotic and abiotic processes. Org Geochem 37:1477–1488
38. Wang JA, Limas-Ballesteros R, Lopez T (2001) Quantitative determination of titanium lattice
defects and solid-state reaction mechanism in iron-doped TiO 2 photocatalysts. J Phys Chem
105(40):9692–9698
39. Handbook of surface and interface analysis: methods for problems solving. In: Riviere JC,
Myhra S, 2nd edn. CRC Press, Boca Raton/London/New York
40. (1990) Practical surface analysis. In: Briggs D, Seach PM (eds) Vol. 1: auger and X-Ray
photoelectron spectroscopy, 2nd edn. Wiley, Chichester
41. Yao S, Jia X, Jiao L, Zhu C, Shi Z (2012) La-doped TiO 2 hollow fibers and their photocatalytic
activity under UV and visible light. Indian J Chem 51A:1049–1056
379
19. Khyzhun OY, Solonin YM, Dobrovolsky VD (2001) Electronic structure of hexagonal tungsten
trioxide: XPS, XES, and XAS studies. J Alloys Comp 320:1–6
20. Barret EP, Joyner LG, Halenda PP (1951) The determination of pore volume and area distributions in porous substances. I. Computations from nitrogen isotherms. J Am Chem Soc
73(3):373–380
21. Korzhak AV, Ermokhina NI, Stroyuk OL, Bukhtiyarov VK, Raevskaya AE, Litvin VI, Kuchmiy
SYa, Ilyin VG, Manorik PA (2008) Photocatalytic hydrogen evolution over mesoporous
TiO 2 /Metal nanocomposites. J Photochem Photobiol A 198(2–3):126–134
22. Wu H-H, Deng L-X, Wang S-R, Zhu B-L, Huang W-P, Wu S-H, Zhang S-M (2010) The
preparation and characterization of La doped TiO 2 nanotubes and their photocatalytic activity.
J Dispers Sci Technol 31:1311–1316
23. Zhu X, Pei L, Zhu R, Jiao Y, Tang R, Feng W (2018) Preparation and characterization of Sn/La
co-doped TiO 2 nanomaterials and their phase transformation and photocatalytic activity. Sci
Rep 8(1):12387
24. Anandan S, Ikuma Y, Murugesan V (2012) Highly active rare-earth-metal La-doped photocatalysts: fabrication, characterization, and their photocatalytic activity. Int J Photoen 2012(Article
ID 921412):10
25. Gerasumenko YuV, Logacheva VA, Babushkina EV, Khoviv AM (2010) Structure and optical
properties of titanium dioxide films, modified with lanthanum. Condensed Matter Interphases
12(4):348–354. (in Russian)
26. Iwasaki M, Masaki H, Ito S, Park W (2007) Fabrication of La 2 O 3 -TiO 2 -SiO 2 system glass
derived from a sol-gel process. J Kor Ceram Soc 44(3):137–141
27. Lowell S, Shields JE (1998) Powder surface area and porosity. Chapman & Hall, London
28. Sing KSW, Everett DH, Haul RAW, Moscou L, Pierotti RA, Rouquerol J, Siemieniewska
T (1985) Reporting physisorption data for gas/solid systems with special reference to the
determination of surface area and porosity. Pure Appl Chem 57(4):603–619
29. Ansón-Casaos A, Tacchini I, Unzue A, Martínez MT (2013) Combined modification of a TiO 2
photocatalyst with two different carbon forms. Appl Surf Sci 270:675–684
30. Qu ZW, Kroes GJ (2006) Theoretical study of adsorption of O( 3 P) and H 2 O on the rutile
TiO 2 (110) surface. J Phys Chem B 110(46):23306–23314
31. Fateley WG, Dollish FR, McDevitt NT, Bentley FF (1972) Infrared and raman selection rules
for molecular and lattice vibrations. Wiley-Interscience, New York
32. Davydov A (1984) IK-Spektroskopiya v Khimii Poverkhnosti Okislov. Nauka, Novosibirsk.
(in Russian)
33. Bezrodna T, Puchkovska G, Shymanovska V, Baran J, Ratajczak H (2004) IR-analysis of
H-bonded H 2 O on the pure TiO 2 surface. J Mol Struct 700:175–181
34. Nakamoto K (1963) Infrared spectra of inorganic and coordination compounds. Wiley, New
York, London, 328 p
35. Bender ET, Katta P, Lotus A, Park SJ, Chase GG, Ramsier RD (2006) Identification of CO 2
sequestered in electrospun metal oxide nanofibers. Chem Phys Lett 423(4):302–305
36. Davies LE, Bonini NA, Locatelli S, Gonzo EE (2005) Characterization and catalytic activity
of zirconium dioxide prepared by sol-gel. Latin Am Appl Res 35:23–28
37. Cheng CH, Lehmann J, Thies JE, Burton SD, Engelhard MH (2006) Oxidation of black carbon
by biotic and abiotic processes. Org Geochem 37:1477–1488
38. Wang JA, Limas-Ballesteros R, Lopez T (2001) Quantitative determination of titanium lattice
defects and solid-state reaction mechanism in iron-doped TiO 2 photocatalysts. J Phys Chem
105(40):9692–9698
39. Handbook of surface and interface analysis: methods for problems solving. In: Riviere JC,
Myhra S, 2nd edn. CRC Press, Boca Raton/London/New York
40. (1990) Practical surface analysis. In: Briggs D, Seach PM (eds) Vol. 1: auger and X-Ray
photoelectron spectroscopy, 2nd edn. Wiley, Chichester
41. Yao S, Jia X, Jiao L, Zhu C, Shi Z (2012) La-doped TiO 2 hollow fibers and their photocatalytic
activity under UV and visible light. Indian J Chem 51A:1049–1056
