PYROELECTRIC THERMOMETER FOR USE AT LOW TEMPERATURES

被引:17
作者
LANG, SB
SHAW, SA
RICE, LH
TIMMERHAUS, KD
机构
[1] Lawrence Radiation Laboratory, University of California, Livermore
[2] National Bureau of Standards, Institute for Basic Standards, Boulder
关键词
D O I
10.1063/1.1683919
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The applicability of pyroelectric thermometry to temperature change or temperature rate measurement at low temperatures was studied, with particular emphasis on calorimetry. The pyroelectric coefficients, dc dielectric constants, and volume resistivities of three ferroelectric ceramic materials, Clevite Ceramic B, PZT-4, and PZT-5A, were measured over the temperature range 4.2 to 300K. The pyroelectric coefficients were found to be reproducible, but large electric fields, thermal shock, and aging affected them. Expressions are derived for the temperature responsivity (voltage output per unit temperature change), noise equivalent temperature change (temperature change equivalent to the electrical noise in a pyroelectric thermometer), and figure of merit (a parameter characterizing the physical properties of a pyroelectric material). Typical temperature responsivities of 8.0 and 165 V/K, and values of noise equivalent temperature change of 2.5 and 0.12 μK, at 5 and 300K, respectively, are calculated. Recommendations are given for the use of a pyroelectric thermometer in a low temperature calorimeter. © 1969 The American Institute of Physics.
引用
收藏
页码:274 / +
页数:1
相关论文
共 29 条
[1]   PYROELECTRIC LASER CALORIMETER [J].
ASTHEIME.RW ;
BUCKLEY, RE .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1967, 38 (12) :1764-&
[2]  
BEERMAN HP, 1967, CERAM B, V46, P737
[3]   DESIGN OF GERMANIUM FOR THERMOMETRIC APPLICATIONS [J].
BLAKEMORE, JS .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1962, 33 (01) :106-&
[4]   ON THE QUANTUM THEORY OF PYROELECTRICITY [J].
BORN, M .
REVIEWS OF MODERN PHYSICS, 1945, 17 (2-3) :245-251
[5]  
BRATSCHUN WR, 1965, J UNDERWATER ACOUSTI, V15, P322
[6]   THEORETICAL EXPRESSION FOR NOISE EQUIVALENT POWER OF PYROELECTRIC DETECTORS [J].
BURDICK, GA ;
ARNOLD, RT .
JOURNAL OF APPLIED PHYSICS, 1966, 37 (08) :3223-&
[7]   SPECIFIC HEAT MEASUREMENTS IN 1-10DEGREESK RANGE USING CONTINUOUS WARMING METHOD [J].
COCHRAN, JF ;
SHIFFMAN, CA ;
NEIGHBOR, JE .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1966, 37 (04) :499-&
[8]   THERMAL EXPANSION AND PYROELECTRICITY IN LEAD TITANATE ZIRCONATE AND BARIUM TITANATE [J].
COOK, WR ;
SCHOLZ, FJ ;
BERLINCOURT, D .
JOURNAL OF APPLIED PHYSICS, 1963, 34 (05) :1392-&
[9]   FAST-RESPONSE PYROELECTRIC THERMAL DETECTOR [J].
COOPER, J .
JOURNAL OF SCIENTIFIC INSTRUMENTS, 1962, 39 (09) :467-+
[10]   MINIMUM DETECTABLE POWER OF A PYROELECTRIC THERMAL RECEIVER [J].
COOPER, J .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1962, 33 (01) :92-+