Up-Conversion Luminescence and Magnetic Properties of Multifunctional Er3+/Yb3+-Doped SiO2-GdF3/LiGdF4 Glass Ceramics

被引:2
|
作者
Secu, Corina [1 ]
Bartha, Cristina [2 ]
Radu, Cristian [1 ,2 ]
Secu, Mihail [1 ]
机构
[1] Natl Inst Mat Phys, Atomistilor 405A, Magurele 077125, Romania
[2] Univ Bucharest, Fac Phys, Atomistilor 405, Magurele 077125, Romania
关键词
glass ceramic; fluorides; sol-gel; nanocrystals; up-conversion luminescence; magnetism; OPTICAL-PROPERTIES; PARAMAGNETIC PROPERTIES; ENERGY-TRANSFER; GEL; NANOCRYSTALS; EMISSION; CRYSTALLIZATION; SIZE; LAF3; EU3+;
D O I
10.3390/magnetochemistry9010011
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Glassy nanocomposites containing Yb3+/Er3+-doped GdF3 and LiGdF4 nanocrystals have been prepared by controlled crystallization of the xerogel and the structural, up-conversion luminescence, and magnetic properties were analyzed and discussed. Structural and morphological analysis showed uniform distribution of both GdF3 and LiGdF4 nanocrystals (tens of nm size), embedded in silica glass matrix as the result of thermal decomposition of the trifluoracetates, revealed as a strong exothermic peak at about 300 degrees C; the Li-ions co-doping showed a strong influence on the GdF3 and LiGdF4 nanocrystalline fraction. The energy dispersive spectrometry mapping showed Gd, F and Yb, Er within the nanocrystals but not in the silica glass matrix. X-ray diffraction pattern analysis indicated the crystalline lattice distortion consistent with the Yb/Er incorporation in both fluoride nanocrystals. The "green" ((H-2(11/2), S-4(3/2)) -> I-4(15/2)) and "red" (F-4(9/2)-> I-4(15/2)) up-conversion luminescences at 525, 545, and 660 nm observed under 980 nm laser light pumping were assigned to the Er3+ ions deexcitation through a two-photon process. The magnetic properties of the nanocomposite are strongly temperature dependent. The magnetization hysteresis loops show a ferromagnetic behavior at low temperatures (5K) related to the rare-earth ions contribution and the saturation magnetization of 39 emu/g. At 300 K a paramagnetic behavior was observed that was ascribed to the non-interacting localized nature of the magnetic moment of the rare-earth ions. Hence, such novel, multifunctional magnetic and optical materials can allow the intertwining between magnetism and photonics and might offer new opportunities for new magneto-optical device development.
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页数:11
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