Анотація
For the first time, the relationship between the features of the crystal structure and the luminescent properties of a series of molybdates, vanadates, and mixed vanadate-molybdates with a scheelite structure has been systematically analyzed. Using the solid-state reaction method, CaMoO₄, KBi(MoO₄)₂, and BiVO₄, as well as solid solutions K₀.₄₅Bi₀.₅₅Mo₀.₉V₀.₁O₄, Ca₀.₁Bi₀.₉Mo₀.₁V₀.₉O₄, Bi₀.₉₈V₀.₉Mo₀.₁O₄ doped with 0.1 mol% Eu³+, have been synthesized. The degree of distortion of the coordination environment of molybdate, vanadate, and mixed vanadate-molybdatetetrahedrain the investigated structures was calculated based on X-ray diffraction data using the Shape 2.0 software via the continuous shape measure method. Analysis of luminescence spectra reveals that the transition from molybdates to vanadates leads to a noticeable red shift of the 5D₀→⁷F₂ transition bands in to the longer-wave length region of the spectrum. For a series of substituted members of the scheelite family, the following common features in the spectral characteristics of europium(III)-doped frameworks can be identified: 1)the red luminescence of all studied scheelite-structured matrices is characterized by predominant emission in the 610–620 nm region, corresponding to the electronic 5D₀→⁷F₂ transition; 2) the coordination environment of the luminescent centersis significantly more distorted than expected for the tetragonal phase of scheelite, even under monoclinic distortion. It was demonstrated that aliovalent substitution with in the anionic and cationic sublattices is one of the key approaches to modifying not only the local structure of the scheelite frame work but also a factor in fluencing the luminescent properties of oxide phosphors. Particular importance is attributed to local changes not only in the first coordination sphere of the luminescent ion but also in the second sphere, which includes mixed tetrahedral anions (Mo/V)O₄. This regularity can serveas the basis for the controlled tuning of luminescence line intensity ratios (color coordinates) and forenhancing the emission efficiency of oxide crystal phosphors.
Посилання
Paikaray R., Badapanda T., Mohapatra H., Richhariya T., &Tripathy S. N. Investigations of structural, photoluminescence, colorimetric, lifetime, and luminous efficiency of Tb3+ and Sm3+ co-doped Calcium Tungstate for WLEDs. Mater. Today Commun. 2024. 40: 109296.
DOI:10.1016/j.mtcomm.2024.109296
Sharma P., Madda J.P., &Vaidyanathan S. Narrow-band dazzling red-emitting (LiCaLa(MoO4)3:Eu3+) phosphor with scheelite structure for hybrid white LED sand LiCaLa(MoO4)3: Sm3+, Eu3+-based deepred LEDs for plant growth applications. DaltonTrans. 2023. 52(41): 15043–15056.
DOI: 10.1039/D3DT02716C
Ayachi F., Saidi K., &Dammak M. Exploring luminescence quenching mechanisms and temperature sensing capabilities of LiSrYW3O12: Sm3+ phosphors. Mater. Adv. 2024. 5(15): 6162–6169.
DOI: 10.1039/D4MA00276H
Wu K., Xi Z., & Li Z. Structure, morphology and upconversion luminescence properties of Yb3+/Er3+ Co-doped NaY(WO4)2 phosphors. Ferroelectrics. 2022. 598(1): 96–108.
DOI:10.1080/00150193.2022.2102826
Shi W., Chen J., Kong J., Ma Z., Gao J., Guo J., Yu R.A novel highly thermal-stablered-emitting CaGdSbWO8: Eu3+ phosphor with scheelite structure for high CRI w-LEDs, security ink, and latent finger print. J.Alloys Compd. 2022. 914: 165134.
doi:10.1016/j.jallcom.2022.165134
Wang S., Xu Y., Chen T., Jiang W., Liu J., Zhang X., ... & Wang L. Bi3+inducedbroad NUV-excitation bandin Eu3+-doped red phosphor with scheelite-related structure. J. Lumin. 2020. 221: 117019.
DOI:10.1016/j.jlumin.2019.117019
Singh K., Pradhan P., Priya S., Mund S. &Vaidyanathan S. Recent progress in Trivalent Europium (Eu3+) based Inorganic phosphors for solid-statelightings–AnOverview. Dalton Trans. 2023.52: 13027–13057.
DOI: 10.1039/D3DT00303E
Wang D., Guan X., & Li G.A novel scheelite‐type LiCaGd(WO4)3: Eu3+ red phosphors with prominent thermal stability and high quantum efficiency. Int.J.Appl.Ceram. 2023. 20(5): 3171–3182.
Doi: 10.1111/ijac.14452
Terebilenko K., Nedilko S., Petrenko O., Slobodyanik M., &Chornii V. Synthesis and luminescence properties of K0,5xBi1-0,5x(MoxV1-x)O4.
Ukrainian Chemical Journal. 2020. 86(11): 3–12. [in Ukrainian]
DOI:10.33609/2708-129X.86.11.2020.3-12
Li S., Bychkov K. L., Butenko D.S., Terebilenko K.V., Zhu Y., Han W., Klyui N.I. Scheelite-related MIIxBi1−xV1−xMoxO4(MII–Ca,Sr) solid solution-based photo anodes for enhanced photoelectrochemical water oxidation. Dalton Trans. 2020. 49(7): 2345–2355.
DOI: 10.1039/C9DT04417E
Terebilenko K.V., Bychkov K.L., Baumer V.N., Slobodyanik N.S., Pavliuk M.V., Thapper A., Strelchuk V.V. Structural transformation of Bi1−x/3V1−xMoxO4 solid solutions for light-driven water oxidation. Dalton Trans. 2016. 45(9): 3895–3904.
DOI:10.1039/C5DT04829J
Llunell M., Casanova D., Cirera J., Alemany P. & Alvarez S. SHAPE, version 2.1. Universitat de Barcelona, Barcelona. Spain. 2013: 2103.
Alvarez S. Continuous Shape Measures Study of the Coordination Spheres of Actinide Complexes–Part 1: LowCoordinationNumbers. Eur. J. Inorg. Chem. 2021. 35: 3632–3647.
DOI:10.1002/ejic.202100500
Mahlik S., Behrendt M., Grinberg M., Cavalli E., &Bettinelli M. High pressure luminescence spectra of CaMoO4:Ln3+ (Ln=Pr, Tb). J. Condens. MatterPhys. 2013. 25(10): 105502.
DOI:10.1088/0953-8984/25/10/105502
Jørgensen C. K., & Judd, B. R. Hypersensitive pseudoquadrupole transitions in lanthanides. Mol. Phys., 1964. 8(3): 281–290.
DOI: 10.1080/00268976400100321

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Авторське право (c) 2025 Kateryna Terebilenko, Mykola Slobodyanik, V Chornii, Volodymyr Boyko, Sergii Nedilko
