Title :
Hydrothermal synthesis and luminescence behavior of lanthanide-doped GdF/sub 3/ nanoparticles
Author :
Fan, Xianping ; Pi, Daibo ; Wang, Feng ; Qiu, Jianrong ; Wang, Minquan
Author_Institution :
Dept. of Mater. Sci. & Eng., Zhejiang Univ., Hangzhou
fDate :
3/1/2006 12:00:00 AM
Abstract :
The lanthanide-doped GdF3 nanoparticles have been produced by a simply hydrothermal synthesis procedure. The excitation and emission spectra of the Eu3+-doped GdF3 nanoparticles showed that the excitation energy of Gd3+ is efficiently transferred to Eu3+ in the Eu3+-doped GdF3 nanoparticles. Due to very low phonon energies of GdF 3 matrix, the 5D1 emission of Eu3+ ions in the Eu3+-doped GdF3 nanoparticles can be observed at room temperature when the doping concentration of Eu 3+ ions is lower than 15 mol%. The luminescence intensity of the Eu3+-doped GdF3 nanoparticles increased with increasing concentration of Eu3+ ions and reached a maximum at approximately 15 mol%. The Er3+-doped GdF3 nanoparticles exhibit the typical emission spectra of Er3+ in the near-infrared region. The upconversion emission of the Er3+ /Yb3+ codoped GdF3 nanoparticles can also be observed. However, the upconversion emission intensity of the Er3+ /Yb3+-codoped GdF3 nanoparticles was much weaker than that of the Er3+/Yb3+-codoped GdF3 bulk crystal
Keywords :
crystal growth from solution; doping profiles; erbium; europium; gadolinium compounds; infrared spectra; nanoparticles; phonons; photoluminescence; ytterbium; 293 to 298 K; Er3+/Yb3+-codoped GdF3 nanoparticles; Eu3+ doped nanoparticles; GdF3:Er,Yb; GdF3:Eu; doping concentration; emission spectra; excitation energy; hydrothermal synthesis; lanthanide-doped GdF3 nanoparticles; luminescence intensity; near-infrared region; phonon energy; room temperature; upconversion emission intensity; Crystalline materials; Erbium; Ethanol; Luminescence; Nanobioscience; Nanoparticles; Optical materials; Phonons; Temperature; X-ray lasers; Erbium; europium; fluorine compounds; luminescence; nanotechnology;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2006.869670