HUANG Bo, TONG Yu-zhen, LI Cheng-ming etc. High-efficiency Technology of LED White Light Based on Phosphor Glass[J]. Chinese Journal of Luminescence, 2016,37(6): 637-643
HUANG Bo, TONG Yu-zhen, LI Cheng-ming etc. High-efficiency Technology of LED White Light Based on Phosphor Glass[J]. Chinese Journal of Luminescence, 2016,37(6): 637-643 DOI: 10.3788/fgxb20163706.0637.
High-efficiency Technology of LED White Light Based on Phosphor Glass
glass powder and a certain mass proportion of YAG:Ce
3+
phosphor powder were taken to prepare SiO
2
-YAG:Ce
3+
PG with melting method
and then the samples were prepared into 0.2 mm thickness for XRD phase
structure of optical micrographs and SEM
and PL spectrum test analysis. The results show that the phase of phosphor is retained in PG and the phosphor particles are uniformly distributed in the glass matrix. Consistent excitation and response relationship of PG and phosphor is observed that the excitation wavelength is about 465 nm and the emission wavelength is about 535 nm. The structure characteristics of phosphor are retained in PG except the glass phase. The blue LED chips with different wavelengths were packaged with the PG samples. The test results indicate that the luminous efficiency can reach at 234.81 lm/W
and the color temperature and CRI monotonically decrease with the increasing of phosphor content in PG
all of which are at a high level. Under different wavelength excitation
x
and
y
in the chromaticity coordinates present roughly same linear rate of change when the mass fraction of phosphor in PG increases from 6% to 15%. In addition
the temperature of PG rose relative slowly and dropped sharply when the PG sample was excited by 450 nm laser
indicating a nice property of heat resistance. The experiment results show that the superior optical properties and heat resistance can be obtained by PG packaged LED
and excellent white light output can be formed.
关键词
Keywords
references
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Related Institution
The Center for Industrial Technology Innovation and Development of Bijie
State Key Laboratory of Optical Technologies on Nano-Fabrication and Micro-Engineering, Institute of Optics and Electronics, Chinese Academy of Sciences
College of Physics and Optoelectronic Engineering, Taiyuan University of Technology
Department of Science, Taiyuan Institute of Technology
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