Energy and temperature dependence of relaxation time and Wiedemann-Franz law on PbTe

被引:111
作者
Ahmad, Salameh [1 ]
Mahanti, S. D. [1 ]
机构
[1] Michigan State Univ, Dept Phys & Astron, E Lansing, MI 48824 USA
关键词
THERMOELECTRIC FIGURE; BAND-GAP; SCATTERING; MERIT;
D O I
10.1103/PhysRevB.81.165203
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Recent revival of interest in high-temperature (T) thermoelectrics has made it necessary to understand in detail the T dependence of different transport coefficients, and different processes contributing to this temperature dependence. Since PbTe is a well-studied prototypical high-temperature thermoelectric, we have carried out theoretical studies to analyze how different physical sources contribute to electronic transport coefficients in this system over a wide T and concentration (n) range; 300 K < T < 900 K and 1 < n/n(o) < 10, where n(o) = 10(19) cm(-3), extending earlier works on this problem. We have used Boltzmann equation within energy-dependent relaxation time approximations. Although the T dependence of the electrical conductivity sigma comes from several sources (band structure parameters, chemical potential mu, relaxation time tau), we find that the T dependence of tau dominates. We fit the T and the energy (epsilon) dependence of the total relaxation time tau(tot) by a simple function tau similar to aT(-p)/(b+c epsilon(r)), where a, b, c, p, and r are T and epsilon independent parameters but depend on n. Using this function, we find that for concentration range of interest, changing r which governs the energy dependence of scattering does not appreciably affect the T dependence of sigma. Electronic thermal conductivities both at constant current J and constant electric field E were calculated using this tau to reexamine the validity of Wiedemann-Franz (WF) law in PbTe, extending the earlier work of Bhandari and Rowe to higher temperatures. We find that using standard WF law to obtain the electronic contribution of the thermal conductivity (kappa(el)) usually overestimates this contribution by more than 0.5 WK-1 m(-1). Therefore the value of the lattice thermal conductivity obtained by subtracting this kappa(el) from the total thermal conductivity is underestimated roughly by the same amount.
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页数:11
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共 30 条
[21]  
RAVICH YI, 1970, SEMICONDUCTING LEAD, V5, P299
[22]  
Rowe D. M., 1995, CRC Handbook of Thermoelectrics
[23]   High-temperature thermoelectric behavior of lead telluride [J].
Singh, MP ;
Bhandari, CM .
PRAMANA-JOURNAL OF PHYSICS, 2004, 62 (06) :1309-1317
[24]   Design concepts for improved thermoelectric materials [J].
Slack, GA .
THERMOELECTRIC MATERIALS - NEW DIRECTIONS AND APPROACHES, 1997, 478 :47-54
[25]   OPTIMUM BAND-GAP OF A THERMOELECTRIC-MATERIAL [J].
SOFO, JO ;
MAHAN, GD .
PHYSICAL REVIEW B, 1994, 49 (07) :4565-4570
[26]  
SOOTSMAN JR, UNPUB
[27]   CALCULATION OF TEMPERATURE DEPENDENCE OF ENERGY GAPS IN PBTE AND SNTE [J].
TSANG, YW ;
COHEN, ML .
PHYSICAL REVIEW B, 1971, 3 (04) :1254-&
[28]   ANOMALOUS TEMPERATURE-DEPENDENCE OF THE EFFECTIVE MASS IN N-TYPE PBTE [J].
YOKOI, H ;
TAKEYAMA, S ;
MIURA, N ;
BAUER, G .
PHYSICAL REVIEW B, 1991, 44 (12) :6519-6522
[29]   The dominant mechanisms of charge-carrier scattering in lead telluride [J].
Zayachuk, DM .
SEMICONDUCTORS, 1997, 31 (02) :173-176
[30]   Enhanced thermoelectric properties of PbTe alloyed with Sb2Te3 [J].
Zhu, PW ;
Imai, Y ;
Isoda, Y ;
Shinohara, Y ;
Jia, XP ;
Zou, GT .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2005, 17 (46) :7319-7326