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Thermoelectric and Galvanomagnetic Properties of the Alloy Bi2Te3 + 0.04 Weight% Ni in the Temperature Range 77 ÷ 300 K

Received: 30 May 2021    Accepted: 12 November 2021    Published: 24 December 2021
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Abstract

The article introduces Hi input to p -type Bi2Te3 thermoelectric materials under inert gas pressure and presents the results of the study of electrical conductivity, Hall coefficients, thermoelectric and galvanomagnetic properties in the temperature range 77 ÷ 300K. The study of thermoelectric properties has shown that in order to explain the temperature dependence of the heat transfer parameter and the ratio of thermoelectric power to temperature, it is necessary to take into account the complex structure of the valence zone and the contribution of heavy cavitation in transport. It is shown that in order to explain the temperature dependences of the scattering parameter and the ratio of thermoelectric power to temperature, it is necessary to take into account the complex structure of the valence band and the contribution of heavy holes to transport phenomena. The estimates of the band parameters in the framework of the two-band model give the values of the effective mass of holes on the order of the mass of a free electron and the energy gap between nonequivalent extrema on the order of several hundredths of an eV.

Published in American Journal of Modern Physics (Volume 10, Issue 6)
DOI 10.11648/j.ajmp.20211006.12
Page(s) 124-128
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Single Crystal, Thermal Conductivity, Scattering, Mobility, Thermoelectric Power, Degeneracy, Effective Mass, Density of States

References
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[2] Goldsmid H. Thermoelectric refrigeration. – Springer, 2013.
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[7] Onarkulov K. E., Azimov T. M. Gojnazarova K. I., Onarkulov M. K. “Vliyanie kontaktov termoelemenetov na effektivnost termobatarei” Mezhdunarodnoj konferenciya fizika poluprovodnikov. Namangan-2020.
[8] X. C. Daliev T. M. Azimov, M. K. Onarkulov. “Vliyanie legiruyushih primesej na mehanicheskie i termoelektricheskie svojstva ohlazhdayushih termoelementov na osnove halkogenidov vismuta i surmy”. Semiconductor Physics and Microelectronics ISSN 2181-9947 Volume 2, Issue 1, 2020.
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  • APA Style

    Toolanboy Marifjonovich Azimov, Kizlarhon Isroilovna Gaynazarova, Maksadjon Karimberdiyvich Onarkulov, Abror Abduvosidovich Yuldashev. (2021). Thermoelectric and Galvanomagnetic Properties of the Alloy Bi2Te3 + 0.04 Weight% Ni in the Temperature Range 77 ÷ 300 K. American Journal of Modern Physics, 10(6), 124-128. https://doi.org/10.11648/j.ajmp.20211006.12

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    ACS Style

    Toolanboy Marifjonovich Azimov; Kizlarhon Isroilovna Gaynazarova; Maksadjon Karimberdiyvich Onarkulov; Abror Abduvosidovich Yuldashev. Thermoelectric and Galvanomagnetic Properties of the Alloy Bi2Te3 + 0.04 Weight% Ni in the Temperature Range 77 ÷ 300 K. Am. J. Mod. Phys. 2021, 10(6), 124-128. doi: 10.11648/j.ajmp.20211006.12

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    AMA Style

    Toolanboy Marifjonovich Azimov, Kizlarhon Isroilovna Gaynazarova, Maksadjon Karimberdiyvich Onarkulov, Abror Abduvosidovich Yuldashev. Thermoelectric and Galvanomagnetic Properties of the Alloy Bi2Te3 + 0.04 Weight% Ni in the Temperature Range 77 ÷ 300 K. Am J Mod Phys. 2021;10(6):124-128. doi: 10.11648/j.ajmp.20211006.12

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  • @article{10.11648/j.ajmp.20211006.12,
      author = {Toolanboy Marifjonovich Azimov and Kizlarhon Isroilovna Gaynazarova and Maksadjon Karimberdiyvich Onarkulov and Abror Abduvosidovich Yuldashev},
      title = {Thermoelectric and Galvanomagnetic Properties of the Alloy Bi2Te3 + 0.04 Weight% Ni in the Temperature Range 77 ÷ 300 K},
      journal = {American Journal of Modern Physics},
      volume = {10},
      number = {6},
      pages = {124-128},
      doi = {10.11648/j.ajmp.20211006.12},
      url = {https://doi.org/10.11648/j.ajmp.20211006.12},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajmp.20211006.12},
      abstract = {The article introduces Hi input to p -type Bi2Te3 thermoelectric materials under inert gas pressure and presents the results of the study of electrical conductivity, Hall coefficients, thermoelectric and galvanomagnetic properties in the temperature range 77 ÷ 300K. The study of thermoelectric properties has shown that in order to explain the temperature dependence of the heat transfer parameter and the ratio of thermoelectric power to temperature, it is necessary to take into account the complex structure of the valence zone and the contribution of heavy cavitation in transport. It is shown that in order to explain the temperature dependences of the scattering parameter and the ratio of thermoelectric power to temperature, it is necessary to take into account the complex structure of the valence band and the contribution of heavy holes to transport phenomena. The estimates of the band parameters in the framework of the two-band model give the values of the effective mass of holes on the order of the mass of a free electron and the energy gap between nonequivalent extrema on the order of several hundredths of an eV.},
     year = {2021}
    }
    

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  • TY  - JOUR
    T1  - Thermoelectric and Galvanomagnetic Properties of the Alloy Bi2Te3 + 0.04 Weight% Ni in the Temperature Range 77 ÷ 300 K
    AU  - Toolanboy Marifjonovich Azimov
    AU  - Kizlarhon Isroilovna Gaynazarova
    AU  - Maksadjon Karimberdiyvich Onarkulov
    AU  - Abror Abduvosidovich Yuldashev
    Y1  - 2021/12/24
    PY  - 2021
    N1  - https://doi.org/10.11648/j.ajmp.20211006.12
    DO  - 10.11648/j.ajmp.20211006.12
    T2  - American Journal of Modern Physics
    JF  - American Journal of Modern Physics
    JO  - American Journal of Modern Physics
    SP  - 124
    EP  - 128
    PB  - Science Publishing Group
    SN  - 2326-8891
    UR  - https://doi.org/10.11648/j.ajmp.20211006.12
    AB  - The article introduces Hi input to p -type Bi2Te3 thermoelectric materials under inert gas pressure and presents the results of the study of electrical conductivity, Hall coefficients, thermoelectric and galvanomagnetic properties in the temperature range 77 ÷ 300K. The study of thermoelectric properties has shown that in order to explain the temperature dependence of the heat transfer parameter and the ratio of thermoelectric power to temperature, it is necessary to take into account the complex structure of the valence zone and the contribution of heavy cavitation in transport. It is shown that in order to explain the temperature dependences of the scattering parameter and the ratio of thermoelectric power to temperature, it is necessary to take into account the complex structure of the valence band and the contribution of heavy holes to transport phenomena. The estimates of the band parameters in the framework of the two-band model give the values of the effective mass of holes on the order of the mass of a free electron and the energy gap between nonequivalent extrema on the order of several hundredths of an eV.
    VL  - 10
    IS  - 6
    ER  - 

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Author Information
  • Physics Department, Ferghana State University, Ferghana, Uzbekistan

  • Physics Department, Ferghana State University, Ferghana, Uzbekistan

  • Physics Department, Ferghana State University, Ferghana, Uzbekistan

  • Physics Department, Ferghana State University, Ferghana, Uzbekistan

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