The effect of Bi doping on thermoelectric properties of Mg2Si0.5Sn0.5

被引:0
|
作者
Isoda, Y. [1 ]
Nagai, T. [2 ]
Fujiu, H. [2 ]
Imai, Y. [1 ]
Shinohara, Y. [1 ]
机构
[1] Natl Inst Mat Sci, Sengen 1-2-1, Tsukuba, Ibaraki 3050047, Japan
[2] Mituba Corp, Kiryu, Gunma 3768555, Japan
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暂无
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
Mg2Si(1-x)Snx solid solution systems are an ecologically friendly semiconductor, and have been proposed to the probable materials for high-performance thermoelectric generators at temperatures range from 500 to 800K. The single phase of this system at the compositions range of 0.4 < x < 0.6 has not been successfully obtained by a Liquid-Solid reaction method and Hot-pressing method. The minimum value of thermal conductivity was identified at around x=0.5. The high thermoelectric performance can be attained by the controlling of carrier concentration for Mg2Si0.5Sn0.5. In this present work, the thermoelectric properties for the single-phase of Bi-doped Mg2Si0.5Sn0.5 were investigated. Seebeck coefficient alpha, electrical resistivity rho and thermal conductivity kappa were measured from room temperature to 850K. The carrier concentration n increased lineally with the amount of Bi-doping, and the Bi atom acts as a singly ionizable substitutional donor. The reduction Fermi energy xi increased with increasing Bi amount. The undoped sample (xi=-2.808) was non-degenerated state, and 1500ppm-Bi doping sample (xi=2.304) was heavily degenerated state. The absolute values of alpha for all samples showed a pronounced maximum which shifts to a higher temperature with increasing n. The rho of non-doping sample shows semiconducting behavior, and Bi-doping samples indicated the same behavior as a metal, which increased monotonously to the intrinsic region with increasing temperature. The carrier component of thermal conductivity was increased, while the phonon component of thermal conductivity was decreased slightly with carrier concentration. The dimensionless figure of merit was showed markedly enhanced the maximum value of ZT=0.87 for 7500ppm-Bi doping at 630K.
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页码:256 / 260
页数:5
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