Citation: | FAN Yao-yao, HU Zong-chao, HAO Hong-yan, LIU Zheng-ping, QIN Han-qing. Morphology and Photoluminescence Properties of the GdPO4:Ce, Tb Nanomaterials with Ultrasonic-assisted Synthesis Characterized by X-ray Diffraction, Infrared Spectroscopy and Scanning Electron Microscopy[J]. Rock and Mineral Analysis, 2016, 35(2): 152-158. doi: 10.15898/j.cnki.11-2131/td.2016.02.007 |
Ultrasonic assisted method is an effective method to prepare nanomaterials, which can improve their magnetic and optical properties. Described in this paper, GdPO4:Ce, Tb ternary system fluorescent powder was synthesized under different pH conditions by ultrasonic-assisted. Optical and structural properties of the fluorescent powder were determined by X-ray Powder Diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Scanning Electron Microscopy (SEM), Transmission Electron Microscopy (TEM) and Photoluminesce (PL).The following conclusions are drawn:(1) When pH=1, synthetic samples are 15 nm×104 nm hexagonalnanobars like orthophosphate, green phosphor. Cystals prefer growing at the face of (102) and (200). When pH < 1, no samples can be synthesized, whereas granular orthophosphate green phosphors were synthesized when pH>1. (2) A possible formation mechanism has been put forward, which provided further evidence for the fluorescent efficiency enhancement. Because the 5d energy states of Ce3+ ions are high, they can be transferred to the Gd3+ ions efficiently. However, the emission transition peak of Gd3+ ions and the absorption peak of Tb3+ ions have large spectral overlap in the Gd, Ce, Tb ternary system. Therefore, the sequence of energy transmission is the Ce3+→Gd3+→Tb3+. A few Ce3+ ions doping to GdPO4 matrix can enhance fluorescence intensity of the luminescent materials. The result provides theoretical basis for the exploit of rare earth materials.
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XRD patterns of samples
(a) The FTIR spectra of samples, (b) The FTIR spectrum of GdPO4:Ce, Tb at pH=1
(a) The SEM patterns of samples at pH=1, (b) The TEM patterns of samples at different pH values
(a) The picture under UV lamp excitation at 254 nm; (b) Room-temperature emission spectra of samples monitored with 314 nm; (c) Room-temperature emission spectra of samples monitored with 275 nm; (d) Room-temperature excitation spectra of samples monitored with 545 nm