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This article is cited in 6 scientific papers (total in 6 papers)
Impurity centers
Photoluminescence of the nanosized xerogel Zn$_{2}$SiO$_{4}$ : Mn$^{2+}$ in pores of anodic alumina
K. A. Petrovykhab, V. S. Kortova, N. V. Gaponenkoc, A. A. Rempelba, M. V. Rudenkoc, L. S. Khoroshkoc, S. S. Voznesenskiid, A. A. Sergeevd, V. A. Pustovarova a Ural Federal University named after the First President of Russia B. N. Yeltsin, Ekaterinburg
b Institute of Solid State Chemistry, Urals Branch of the Russian Academy of Sciences, Ekaterinburg
c Belarussian State University of Computer Science and Radioelectronic Engineering
d Institute for Automation and Control Processes, Far Eastern Branch of the Russian Academy of Sciences, Vladivostok
Abstract:
The photoluminescence properties of a composite material prepared by the introduction of the nanosized phosphor Zn$_{2}$SiO$_{4}$ : Mn$^{2+}$ into porous anodic alumina have been investigated. Scanning electron microscopy studies have revealed that Zn$_{2}$SiO$_{4}$ : Mn$^{2+}$ particles are uniformly distributed in 70% of the volume of the pore channels. The samples exhibit an intense luminescence in the range of 2.3–3.0 eV, which corresponds to the emission of different types of F centers in alumina. After the formation of Zn$_{2}$SiO$_{4}$ : Mn$^{2+}$ nanoparticles in the pores, an intense photoluminescence band is observed at 2.4 eV due to the $^{4}T_{1}$–$^{6}A_{1}$ electronic transition within the 3$d$ shell of the Mn$^{2+}$ activator ion. It has been found that the maximum of the photoluminescence of Zn$_{2}$SiO$_{4}$ : Mn$^{2+}$ xerogel nanoparticles located in the porous matrix is shifted to higher energies, and the luminescence decay time decreases significantly.
Received: 22.12.2015 Revised: 18.04.2016
Citation:
K. A. Petrovykh, V. S. Kortov, N. V. Gaponenko, A. A. Rempel, M. V. Rudenko, L. S. Khoroshko, S. S. Voznesenskii, A. A. Sergeev, V. A. Pustovarov, “Photoluminescence of the nanosized xerogel Zn$_{2}$SiO$_{4}$ : Mn$^{2+}$ in pores of anodic alumina”, Fizika Tverdogo Tela, 58:10 (2016), 1989–1994; Phys. Solid State, 58:10 (2016), 2062–2067
Linking options:
https://www.mathnet.ru/eng/ftt9825 https://www.mathnet.ru/eng/ftt/v58/i10/p1989
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