| Literature DB >> 28903252 |
Chengren Li1, Bin Dong2, Chengguo Ming1, Mingkai Lei3.
Abstract
The green up-conversion emissions centered at the wavelengths of about 534nmand 549nm of the Er3+ doped silicate glass were recorded, using a 978 nm semiconductorlaser diode (LD) as an excitation source. The fluorescence intensity ratio (FIR) of the greenup-conversion emissions at about 534nm and 549nm in the Er3+ doped silicate glass wasstudied as a function of temperature over the temperature range of 296K-673K. Themaximum sensitivity and the temperature resolution derived from the FIR of the green up-conversion emissions are approximately 0.0023K-1 and 0.8K, respectively. It isdemonstrated that the prototype optical temperature sensor based on the FIR technique fromthe green up-conversion emissions in the Er3+ doped silicate glass could play a major role intemperature measurement.Entities:
Keywords: Er3+ doped silicate glass; Fluorescence intensity ratio; Green up-conversion emissions; Optical temperature sensor
Year: 2007 PMID: 28903252 PMCID: PMC3965233 DOI: 10.3390/s7112652
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.The energy level diagram of the green up-conversion emissions for the Er3+ doped silicate glass by a 978 nm laser excitation.
Figure 2.The green up-conversion emissions spectra in the wavelength range of 500nm-600nm for the Er3+ doped silicate glass at the measured temperature of 296K and 633K.
Figure 3.The monolog plot of the FIR of green up-conversion emissions at about 534nm and 549 nm as a function of inverse absolute temperature in the range of 296K-673K.
Figure 4.The FIR of green up-conversion emissions at about 534nm and 549nm relative to the temperature range of 296K-673K.
Figure 5.The sensor sensitivity dR/dT as a function of the temperature range of 296K-673K.