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Effect of (Sm, In) Doping on the Electrical and Thermal Properties of Sb 2 Te 3 Microstructures.

Nitasha KomalMuhammad Adil MansoorMuhammad MazharManzar SohailZahida MalikMuhammad Anis-Ur-Rehman
Published in: ACS omega (2023)
Doped Sb 2 Te 3 narrow-band-gap semiconductors have been attracting considerable attention for different electronic and thermoelectric applications. Trivalent samarium (Sm)- and indium (In)-doped Sb 2 Te 3 microstructures have been synthesized by the economical solvothermal method. Powder X-ray diffraction (PXRD) was used to verify the synthesis of single-phase doped and undoped Sb 2 Te 3 and doping of Sm and In within the crystal lattice of Sb 2 Te 3 . Further, the morphology, structure elucidation, and stability have been investigated systematically by scanning electron microscopy (SEM), Raman analysis, and thermogravimetric analysis (TGA). These analyses verified the successful synthesis of hexagonal undoped Sb 2 Te 3 (AT) and (Sm, In)-doped Sb 2 Te 3 (SAT, IAT) microstructures. Moreover, the comparison of dielectric parameters, including dielectric constant, dielectric loss, and tan loss of AT, SAT, and IAT, was done in detail. An increment in the electrical conductivities, both AC and DC, from 1.92 × 10 -4 to 4.9 × 10 -3 Ω -1 m -1 and a decrease in thermal conductivity (0.68-0.60 W m -1 K -1 ) were observed due to the doping by trivalent (Sm, In) dopants. According to our best knowledge, the synthesis and dielectric properties of (Sm, In)-doped and undoped Sb 2 Te 3 in comparison with their electrical properties and thermal conductivity have not been reported earlier. This implies that appropriate doping with (Sm, In) in Sb 2 Te 3 is promising to enhance the electronic and thermoelectric behavior.
Keyphrases
  • quantum dots
  • electron microscopy
  • highly efficient
  • metal organic framework
  • high resolution
  • magnetic resonance imaging
  • magnetic resonance
  • mass spectrometry
  • visible light
  • transition metal