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Strain-independent temperature measurement by use of a fluorescence intensity ratio technique in optical fiber
Applied Optics
◽
10.1364/ao.39.003050
◽
2000
◽
Vol 39
(18)
◽
pp. 3050
◽
Cited By ~ 23
Author(s):
Scott A. Wade
◽
Stephen F. Collins
◽
Kenneth T. V. Grattan
◽
Gregory W. Baxter
Keyword(s):
Optical Fiber
◽
Temperature Measurement
◽
Fluorescence Intensity
◽
Intensity Ratio
◽
Fluorescence Intensity Ratio
Download Full-text
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◽
10.1016/j.ceramint.2021.08.262
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◽
Author(s):
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◽
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◽
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◽
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◽
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Strain independence of the fluorescence intensity ratio temperature sensing technique in neodymium-doped optical fiber
10.1117/12.397886
◽
2000
◽
Cited By ~ 1
Author(s):
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◽
Cristina Vegara
◽
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◽
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◽
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Keyword(s):
Optical Fiber
◽
Fluorescence Intensity
◽
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◽
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Application of a fluorescence intensity ratio technique for the intrinsic determination of pH using an optical fiber sensor
10.1117/12.2195314
◽
2015
◽
Author(s):
Bhadra Thotath
◽
T. Hien Nguyen
◽
Weiwei Zhang
◽
Stephen P. Wren
◽
Gregory W. Baxter
◽
...
Keyword(s):
Optical Fiber
◽
Fluorescence Intensity
◽
Intensity Ratio
◽
Optical Fiber Sensor
◽
Fiber Sensor
◽
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Optical fiber sensors in border detection application: Temperature, strain and pressure distinguished detection using fiber Bragg grating and fluorescence intensity ratio
Optik
◽
10.1016/j.ijleo.2021.166257
◽
2021
◽
Vol 229
◽
pp. 166257
Author(s):
Hacen Khlaifi
◽
Amira Zrelli
◽
Tahar Ezzedine
Keyword(s):
Optical Fiber
◽
Fiber Bragg Grating
◽
Fluorescence Intensity
◽
Intensity Ratio
◽
Optical Fiber Sensors
◽
Bragg Grating
◽
Fluorescence Intensity Ratio
◽
Border Detection
◽
Fiber Sensors
◽
Temperature Strain
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Fluorescence intensity ratio technique for optical fiber point temperature sensing
Journal of Applied Physics
◽
10.1063/1.1606526
◽
2003
◽
Vol 94
(8)
◽
pp. 4743
◽
Cited By ~ 692
Author(s):
S. A. Wade
◽
S. F. Collins
◽
G. W. Baxter
Keyword(s):
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Intensity Ratio
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Temperature Sensing
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Fluorescence Intensity Ratio
◽
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Nd3+-doped optical fiber temperature sensor using the fluorescence intensity ratio technique
Review of Scientific Instruments
◽
10.1063/1.1150067
◽
1999
◽
Vol 70
(11)
◽
pp. 4279-4282
◽
Cited By ~ 44
Author(s):
S. A. Wade
◽
J. C. Muscat
◽
S. F. Collins
◽
G. W. Baxter
Keyword(s):
Optical Fiber
◽
Fluorescence Intensity
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Temperature Sensor
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Intensity Ratio
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Investigation of temperature measurement system based on fluorescence intensity ratio of erbium-doped fiber
2017 16th International Conference on Optical Communications and Networks (ICOCN)
◽
10.1109/icocn.2017.8121183
◽
2017
◽
Author(s):
Tao Yang
◽
Yanqing Qiu
◽
Zhen Wang
◽
Bangning Mao
◽
Shenghua Zhou
Keyword(s):
Temperature Measurement
◽
Fluorescence Intensity
◽
Measurement System
◽
Intensity Ratio
◽
Fluorescence Intensity Ratio
◽
Erbium Doped
◽
Temperature Measurement System
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Fluorescence intensity ratio thermometer methodology of eliminating the “decoupling” effect of a pair of thermally coupled energy levels of rare-earth ions
Optics Letters
◽
10.1364/ol.42.001401
◽
2017
◽
Vol 42
(7)
◽
pp. 1401
◽
Cited By ~ 3
Author(s):
Feng Qin
◽
Hua Zhao
◽
Moyang Lv
◽
Wei Cai
◽
Zhiguo Zhang
◽
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◽
Fluorescence Intensity
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Intensity Ratio
◽
Energy Levels
◽
Rare Earth Ions
◽
Fluorescence Intensity Ratio
◽
Decoupling Effect
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Effect of Al2O3 concentration on fluorescence intensity ratio of Er3+/Yb3+ co-doped tellurite glasses for optical temperature sensors under 375 nm and 980 nm excitation
Journal of Luminescence
◽
10.1016/j.jlumin.2022.118745
◽
2022
◽
pp. 118745
Author(s):
R. Narro-García
◽
J.J. Leal
◽
E. Rodríguez
Keyword(s):
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Intensity Ratio
◽
Temperature Sensors
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Fluorescence Intensity Ratio
◽
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Al2o3 Concentration
◽
Co Doped
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Corrigendum to “Sm3+, Tb3+ co-doped NaLa(MoO4)2 temperature sensing materials based on the fluorescence intensity ratio” [J. Alloy. Comp. 784 (2019) 456–462]
Journal of Alloys and Compounds
◽
10.1016/j.jallcom.2019.07.004
◽
2019
◽
Vol 803
◽
pp. 1184
Author(s):
Yao Zhu
◽
Qingyu Meng
◽
Wenjun Sun
◽
Shuchen Lü
Keyword(s):
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Intensity Ratio
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Temperature Sensing
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Fluorescence Intensity Ratio
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Co Doped
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