4.7 Article

Effective decoupling of seebeck coefficient and the electrical conductivity through isovalent substitution of erbium in bismuth selenide thermoelectric material

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 857, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2020.157559

Keywords

Thermoelectric material; Isovalent substitution; Bismuth selenide; Power factor

Funding

  1. Research Grants Council of Hong Kong Special Administrative Region Project [T42-103/16N]
  2. Act 211 Government of the Russian Federation [02. A03.21.0011]

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This study demonstrates that substitution of erbium within bismuth selenide can enhance both the Seebeck coefficient and electrical conductivity, while reducing thermal conductivity. The optimal composition of Bi1.85Er0.15Se3 shows that minimal substitution is required for optimizing thermoelectric performance.
Recognizing high thermoelectric performance in semiconducting materials is a challenging task. This is because the Seebeck coefficient and electrical conductivity which constitute the thermoelectric power factor are unfavourably coupled. This means decoupling the transport properties of thermoelectric materials to enhance the power factor without compromising the thermal conductivity is essential. Herein we report that the substitution of erbium (Er) within bismuth selenide (Bi2Se3) results in a simultaneous enhancement in Seebeck coefficient and electrical conductivity via effective mass and Fermi energy optimization. The Er-Substitution in Bi2Se3 does not only promote a simultaneous increase in Seebeck coefficient and electrical conductivity but also decreases the thermal conductivity through an enhancement in phonon scattering. Consequently, the optimum composition is found for the Bi1.85Er0.15Se3 sample instigating that, minimal substitution amount is required to optimize the thermoelectric performance. Our numerical calculation also shows that Er substitution alters the Fermi energy of the Bi2Se3 TE materials, thereby enhancing the effective mass. Through Raman and XPS characterization, we also elucidate that Er substitution does not change the chemical structure and chemical bonding of the pristine material appreciably. It thus leads to improvement in the Seebeck coefficient and electrical conductivity via effective mass optimization. This unique work presents a facile, scalable, cost-effective, and controllable synthesis of nanostructured Bi2Se3 toward realizing high-performance thermoelectric devices. Crown Copyright (C) 2020 Published by Elsevier B.V. All rights reserved.

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