Temperature sensor for scanning thermal microscopy based on photoluminescence of microcrystal

被引:0
作者
Sayoud, A. [1 ,2 ]
Trannoy, N. [1 ]
Jouart, J-P. [1 ]
Grossel, Ph. [1 ]
Diaf, M. [2 ]
Duvaut, Th. [1 ]
机构
[1] Univ Reims, Grp Sci Engineer, GRESPI CATHERM, EA4301, BP1039, F-51687 Reims 2, France
[2] Univ Badji Mokhtar, LAPLASO, Annaba, Algeria
来源
INFRARED REMOTE SENSING AND INSTRUMENTATION XIX | 2011年 / 8154卷
关键词
temperature probe; thermo-sensitive probe; luminescent materials; rare-earth doped materials; Fluorescence; microthermics; thermal microscopy;
D O I
10.1117/12.895231
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A new sensor is developed for measuring local temperatures. This sensor is based on a thermal-resistive probe and on photoluminescence of crystal. The final purpose is to develop a device calibrated in temperature and capable of acquiring images of local temperature at sub-micrometric scale. Indeed, the sensor temperature can be obtained in two distinct ways: one from the thermal probe parameters and the other from the green photoluminescence generated in the anti-Stokes mode by the Er ions directly excited by a red laser. The thermal probe is in Wollaston wire whose thermal-resistive element is in platinum/rhodium. Its temperature is estimated from the probe electrical characteristics and a modelling. A microcrystal of Cd0.7Sr0.3F2: Er3+(4%)-Yb3+(6%) about 25 mu m in diameter is glued at the probe extremity. This luminescent material has the particularity to give an emission spectrum with intensities sensitive to small temperature variations. The crystal temperature is estimated from the intensity measurements at 522, 540 and 549 nm by taking advantage of particular optical properties due to the crystalline nature of Cd0.7Sr0.3F2: Er3+-Yb3+. The temperature of probe microcrystal is then assessed as a function of electric current in the thermal probe by applying the Boltzmann's equations. The first results will be presented and discussed.
引用
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页数:8
相关论文
共 8 条
[1]   Scanning thermal imaging of microelectronic circuits with a fluorescent nanoprobe [J].
Aigouy, L ;
Tessier, G ;
Mortier, M ;
Charlot, B .
APPLIED PHYSICS LETTERS, 2005, 87 (18) :1-3
[2]   The use of the green emission in Er3+-doped CaF2 crystals for thermometry application [J].
Chouahda, Z. ;
Jouart, J. P. ;
Duvaut, T. ;
Diaf, M. .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2009, 21 (24)
[3]   Microscale and Nanoscale Thermal Characterization Techniques (Reprinted from Thermal Issues in Emerging Technologies: Theory and Application, January, 2007) [J].
Christofferson, J. ;
Maize, K. ;
Ezzahri, Y. ;
Shabani, J. ;
Wang, X. ;
Shakouri, A. .
JOURNAL OF ELECTRONIC PACKAGING, 2008, 130 (04)
[4]   ENERGY-TRANSFER UPCONVERSION IN CDF2-ER-3+ AND SRX CD1-XF2-ER-3+ [J].
JOUART, JP ;
BISSIEUX, C ;
MARY, G .
JOURNAL OF LUMINESCENCE, 1984, 29 (03) :261-274
[5]  
RAPHAEL O, 2006, P SFT 2006, V14, P689
[6]  
RAPHAEL O, 2007, P SFT, V15, P787
[7]   Scanning thermal imaging by near-field fluorescence spectroscopy [J].
Saidi, Elika ;
Samson, Benjamin ;
Aigouy, Lionel ;
Volz, Sebastian ;
Loew, Peter ;
Bergaud, Christian ;
Mortier, Michel .
NANOTECHNOLOGY, 2009, 20 (11)
[8]  
TRANNOY N, 1997, P C EUR ADV CONC TEC, V10, P151