Optical and Photoluminescence Properties of Rare Earth Ions-Doped Anatase/Brookite Dual-Phase TiO2
DOI:
https://doi.org/10.15407/ujpe71.4.321Keywords:
TiO2, nanocrystals, rare earth, UV-Vis-NIR absorption, luminescence, energy transferAbstract
For the first time, optical absorption and luminescent properties of nanostructured dual-phase anatase-brookite (A/B) TiO2 doped with Sm3+, Gd3+, Tb3+, Tm3+ and Yb3+ rear earth (RE) ions are reported. The RE-doped TiO2 particles had a spherical shape with a typical size of 10–25 μm in diameter and consisted of grown together nanocrystallite aggregates of 5–8 nm. SEM/EDS analysis confirmed successful incorporation of RE-dopants onto the surface of the TiO2 particles. With FTIR spectroscopy, a formation of RE–Ti–O and RE–OH bonds near the surface defect states was found. UV-Vis-NIR diffuse reflectance spectra exhibited a blue shift of the TiO2 main absorption band maximum for Gd3+ dopant and a red shift of the absorption edge for Yb3+. Several characteristic NIR absorption bands of RE ions were also detected for Sm3+ -, Tm3+ - and Yb3+ -doped TiO2, assigned to their 4f -4f transitions, while Gd3+ - and Tb3+ -doped samples show no absorption in this region. The calculated band gap energies (Eg) of RE-doped TiO2 were 3.02, 2.97, 2.93, 2.92, 2.88 and 2.91 eV, for undoped and doped with Sm3+, Tm3+, Tb3+, Yb3+, and Gd3+ samples, respectively. It was shown that under excitation of A/B TiO2 nanocrystals above the TiO2 band gap energy, the particles exhibited characteristic luminescence corresponding to 4f –4f transitions of RE3+ ions. It was explained that in RE-doped A/B dual-phase TiO2 nanostructures, the regions at A/B junctions or grain boundaries of TiO2 nanocrystals can easily accommodate RE3+ ions and provide for efficient energy transfer from TiO2 to RE3+ ions under appropriate alignment of excited state energy levels of the dopant in TiO2 band gap. Such energy transfer was observed only in samples doped with Sm3+, Tb3+, and Tm3+, while no emission was observed for Yb3+ - and Gd3+ -doped TiO2 due to the higher energy of their excited states. RE-doped A/B dual-phase TiO2 nanostructures may find potential applications in various optical and engineering fields, such as LED, optic systems, communication devices, and heterogeneous photocatalysis.
References
1. M. Runowski, N. Stopikowska, S. Lis. UV-Vis-NIR absorption spectra of lanthanide oxides and fluorides. Dalton Trans. 49, 2129 (2020).
https://doi.org/10.1039/C9DT04921E
2. F. Wang, R. Deng, J. Wang, Q. Wang, Y. Han, H. Zhu, X. Chen, X. Liu. Tuning upconversion through energy migration in core-shell nanoparticles. Nat. Mater. 10, 968 (2011).
https://doi.org/10.1038/nmat3149
3. Q. Su, S. Han, X. Xie, H. Zhu, H. Chen, C.-K. Chen, R.-S. Liu, X. Chen, F. Wang, X. Liu. The effect of surface coating on energy migration-mediated upconversion. J. Am. Chem. Soc. 134, 20849 (2012).
https://doi.org/10.1021/ja3111048
4. A.A. Bol, R. van Beek, A. Meijerink. On the incorporation of trivalent rare earth ions in II−VI semiconductor nanocrystals. Chem. Mater. 14, 112 (2002).
https://doi.org/10.1021/cm011195s
5. J. Ming, J. Zhou, X. Liu, F. Zhang. Antenna effect for enhanced near-infrared luminescence in lanthanide-doped nanoparticles: mechanisms, strategies, and applications. Adv. Mater. e08521 (2025).
https://doi.org/10.1002/adma.202508521
6. H. Maas, A. Currao, G. Calzaferri. Encapsulated lanthanides as luminescent materials. Angew. Chem. Int. Ed. 41, 2495 (2002).
https://doi.org/10.1002/1521-3773(20020715)41:14<2495::AID-ANIE2495>3.0.CO;2-G
7. D. Yue, W. Lu, L. Jin, C. Li, W. Luo, M. Wang, Z. Wang, J. Hao. Controlled synthesis, asymmetrical transport behavior and luminescence properties of lanthanide doped ZnO mushroom-like 3D hierarchical structures. Nanoscale 6, 13795 (2014).
https://doi.org/10.1039/C4NR04359F
8. E. Anuja, I. Potheher, M. Meena, M. Vimalan. Impact on bandgap, electrical and magnetic properties of SnO2 nanoparticles by cerium and samarium. J. Mol. Struct. 1320, 139617 (2024).
https://doi.org/10.1016/j.molstruc.2024.139617
9. K.L. Frindell, M.H. Bartl, M.R. Robinson, G.C. Bazan, A. Popitsch, G.D. Stucky. Visible and near-IR luminescence via energy transfer in rare earth doped mesoporous titania thin films with nanocrystalline walls. J. Solid State Chem. 172, 81 (2003).
https://doi.org/10.1016/S0022-4596(02)00126-3
10. M. Saif, M. Abdel-Mottaleb. Titanium dioxide nanomaterial doped with trivalent lanthanide ions of Tb, Eu and Sm: Preparation, characterization and potential applications. Inorg. Chim. Acta 360, 2863 (2007).
https://doi.org/10.1016/j.ica.2006.12.052
11. Z. Liu, J. Zhang, B. Han, J. Du, T. Mu, Y. Wang, Z. Sun. Solvothermal synthesis of mesoporous Eu2O3-TiO2 composites. Micropor. Mesopor. Mater. 81, 169 (2005).
https://doi.org/10.1016/j.micromeso.2005.01.028
12. T.A. Khalyavka, V.V. Shymanovska, E.V. Manuilov, N.D. Shcherban, O.Y. Khyzhun, G.V. Korzhak, V.V. Permyakov. The influence of la doping on structural, optical, and photocatalytic properties of TiO2 in dyes destruction and hydrogen evolution. In: Nanostructure Surfaces, and Their Applications, Springer Proceedings in Physics, Vol. 246 (Springer, 2021), p. 361.
https://doi.org/10.1007/978-3-030-51905-6_27
13. A. Borkowska, J. Domaradzki, D. Kaczmarek. Influence of Eu dopant on optical properties of TiO2 thin films fabricated by low pressure hot target reactive sputtering. Opt. Applicat. 37, 117 (2007).
14. E. Radha, D. Komaraiah, R. Sayanna, J. Sivakumar. Photoluminescence and photocatalytic activity of rare earth ions doped anatase TiO2 thin films. J. Luminesc. 244, 118727 (2022).
https://doi.org/10.1016/j.jlumin.2022.118727
15. J. Yin, L. Xiang, X. Zhao. Monodisperse spherical mesoporous Eu-doped phosphor particles and the luminescence properties. Appl. Phys. Lett. 90, 113112 (2007).
https://doi.org/10.1063/1.2712495
16. L. Li, C. Tsung, Z. Yang, G.D. Stucky, L.D. Sun, J.F. Wang, C.H. Yan. Rare-earth-doped nanocrystalline titania microspheres emitting luminescence via energy transfer. Adv. Mater. 20, 903 (2008).
https://doi.org/10.1002/adma.200701507
17. T. Khalyavka, O. Cabezuelo, N. Shcherban, G. Korzhak, P. Yaremov, R. Burve, E. Co¸skun, T.M. Budnyak, J.-C. Grivel. Assessment of rare earth element-doped anatase-brookite composition for photocatalytic hydrogen production and Rhodamine B photodegradation. J. Alloys Compd. 1025, 180292 (2025).
https://doi.org/10.1016/j.jallcom.2025.180292
18. T. Khaliavka, N. Shcherban, G. Korzhak, P. Yaremov, I. Kopa, R. Burve, E. Co¸skun, J. Grivel. Photocatalytic hydrogen evolution activity of anatase-brookite nanoparticles modified with rare earth metals (Gd, Lu, Tm, Tb, Pr). In: Proceedings of the 16th International Conference on Nanomaterials - Research & Application, October 16-18, 2024/OREA Congress Hotel Brno, Czech Republic, EU (2025), p. 88.
https://doi.org/10.37904/nanocon.2024.4988
19. T. Bezrodna, G. Puchkovska, V. Shymanovska, J. Baran, H. Ratajczak. IR-analysis of H-bonded H2O on the pure TiO2 surface. J. Mol. Struct. 700, 175 (2004).
https://doi.org/10.1016/j.molstruc.2003.12.057
20. R. Bensasson, E.J. Land. Triplet-triplet extinction coefficients via energy transfer. Trans. Faraday Soc. 67, 1904 (1971).
https://doi.org/10.1039/tf9716701904
21. E.M. Huseynov, E.A. Huseynova. Infrared spectroscopy of nanocrystalline anatase (TiO2) particles under the neutron irradiation. Opt. Mater. 144, 114351 (2023).
https://doi.org/10.1016/j.optmat.2023.114351
22. M. Iliev, V. Hadjiev, A. Litvinchuk. Raman and infrared spectra of brookite (TiO2): Experiment and theory. Vibr. Spectrosc. 64, 148 (2012).
https://doi.org/10.1016/j.vibspec.2012.08.003
23. Y. Zou, X. Tan, T. Yu, Y. Li, Q. Shang, W. Wang. Synthesis and photocatalytic activity of chrysanthemumlike brookite TiO2 nanostructures. Mater. Lett. 132, 182 (2014).
https://doi.org/10.1016/j.matlet.2014.06.078
24. M. Anpo, M. Takeuchi. The design and development of highly reactive titanium oxide photocatalysts operating under visible light irradiation. J. Catal. 216, 505 (2003).
https://doi.org/10.1016/S0021-9517(02)00104-5
25. J. Tauc. Optical properties and electronic structure of amorphous Ge and Si. Mater. Res. Bull. 3, 37 (1968).
https://doi.org/10.1016/0025-5408(68)90023-8
26. S. K. Sharma, T. Behm, T. K¨ohler, J. Beyer, R. Gloaguen, J. Heitmann. Library of UV-visible absorption spectra of rare earth orthophosphates, LnPO4 (Ln = La-Lu, except Pm). Crystals 10, 593 (2020).
https://doi.org/10.3390/cryst10070593
27. S. K. Sharma, J. Beyer, R. Gloaguen, J. Heitmann. Nonquenching photoluminescence emission up to at least 865 K upon near-UV excitation in a single crystal of orangered emitting SmPO4. Phys. Chem. Chem. Phys. 21, 25669 (2019).
https://doi.org/10.1039/C9CP05663G
28. J.A. Capobianco, F. Vetrone, J.C. Boyer, A. Speghini, M. Bettinelli. Enhancement of red emission (4F9/2 →4I15/2) via upconversion in bulk and nanocrystalline cubic Y2O3 : Er3+. J. Phys. Chem. B 106, 1181 (2002).
https://doi.org/10.1021/jp0129582
29. Y. Wang, K. Zheng, S. Song, D. Fan, H. Zhang, X. Liu. Remote manipulation of upconversion luminescence. Chem. Soc. Rev. 47, 6473 (2018).
https://doi.org/10.1039/C8CS00124C
30. L. Kernazhitsky, V. Shymanovska, T. Gavrilko, V. Naumov, L. Fedorenko, V. Kshnyakin, J. Baran. Photoluminescence of Cr-doped TiO2 induced by intense UV laser excitation. J. Lumin. 166, 253 (2015).
https://doi.org/10.1016/j.jlumin.2015.03.034
31. Y. Lei, L.D. Zhang. Fabrication, characterization, and photoluminescence properties of highly ordered TiO2 nanowire arrays. J. Mater. Res. 16, 1138 (2001).
https://doi.org/10.1557/JMR.2001.0157
32. M. Chaika, S. Ubizskii, J. Kajan, T. Gregor, G. Gamazyan, L. Marciniak. On the nature of CT luminescence in Yb3+: YAG single crystal under low photon energy. Opt. Mater. 130, 112548 (2022).
https://doi.org/10.1016/j.optmat.2022.112548
33. A. Szysiak, R. Tomala, H. We˛glarz, J. Kajan, M. S lobodzian, M. Chaika. Toward more performant eye safe lasers: Effect of increasing sensitizer amount in Yb3+, Er3+: YAG transparent ceramic on its spectral characteristics. J. Eur. Ceram. Soc. 45, 117365 (2025).
Downloads
Published
Issue
Section
License
Copyright Agreement
License to Publish the Paper
Kyiv, Ukraine
The corresponding author and the co-authors (hereon referred to as the Author(s)) of the paper being submitted to the Ukrainian Journal of Physics (hereon referred to as the Paper) from one side and the Bogolyubov Institute for Theoretical Physics, National Academy of Sciences of Ukraine, represented by its Director (hereon referred to as the Publisher) from the other side have come to the following Agreement:
1. Subject of the Agreement.
The Author(s) grant(s) the Publisher the free non-exclusive right to use the Paper (of scientific, technical, or any other content) according to the terms and conditions defined by this Agreement.
2. The ways of using the Paper.
2.1. The Author(s) grant(s) the Publisher the right to use the Paper as follows.
2.1.1. To publish the Paper in the Ukrainian Journal of Physics (hereon referred to as the Journal) in original language and translated into English (the copy of the Paper approved by the Author(s) and the Publisher and accepted for publication is a constitutive part of this License Agreement).
2.1.2. To edit, adapt, and correct the Paper by approval of the Author(s).
2.1.3. To translate the Paper in the case when the Paper is written in a language different from that adopted in the Journal.
2.2. If the Author(s) has(ve) an intent to use the Paper in any other way, e.g., to publish the translated version of the Paper (except for the case defined by Section 2.1.3 of this Agreement), to post the full Paper or any its part on the web, to publish the Paper in any other editions, to include the Paper or any its part in other collections, anthologies, encyclopaedias, etc., the Author(s) should get a written permission from the Publisher.
3. License territory.
The Author(s) grant(s) the Publisher the right to use the Paper as regulated by sections 2.1.1–2.1.3 of this Agreement on the territory of Ukraine and to distribute the Paper as indispensable part of the Journal on the territory of Ukraine and other countries by means of subscription, sales, and free transfer to a third party.
4. Duration.
4.1. This Agreement is valid starting from the date of signature and acts for the entire period of the existence of the Journal.
5. Loyalty.
5.1. The Author(s) warrant(s) the Publisher that:
– he/she is the true author (co-author) of the Paper;
– copyright on the Paper was not transferred to any other party;
– the Paper has never been published before and will not be published in any other media before it is published by the Publisher (see also section 2.2);
– the Author(s) do(es) not violate any intellectual property right of other parties. If the Paper includes some materials of other parties, except for citations whose length is regulated by the scientific, informational, or critical character of the Paper, the use of such materials is in compliance with the regulations of the international law and the law of Ukraine.
6. Requisites and signatures of the Parties.
Publisher: Bogolyubov Institute for Theoretical Physics, National Academy of Sciences of Ukraine.
Address: Ukraine, Kyiv, Metrolohichna Str. 14-b.
Author: Electronic signature on behalf and with endorsement of all co-authors.










