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Title: Thermoelectric properties of epitaxial TbAs:InGaAs nanocomposites

Journal Article · · Journal of Applied Physics
DOI:https://doi.org/10.1063/1.4711095· OSTI ID:22038955
;  [1]; ;  [2]; ; ;  [3];  [3]
  1. Materials Science and Engineering Department, University of Delaware, Newark, Delaware 19716 (United States)
  2. Electrical Engineering Department, University of California, Santa Cruz, California 95064 (United States)
  3. Materials Department, University of California, Santa Barbara, California 93106 (United States)

InGaAs lattice-matched to InP was grown by molecular beam epitaxy with randomly distributed TbAs nanoparticles for thermoelectric power generation applications. TbAs:InGaAs is expected to have a large thermoelectric figure of merit, ZT, particularly at high temperatures, owing to energy band alignment between the nanoparticles and their surrounding matrix. Here, the room temperature thermoelectric properties were measured as a function of TbAs concentration, revealing a maximum thermoelectric power factor of 2.38 W/mK{sup 2} and ZT of 0.19 with 0.2% TbAs. Trends in the thermoelectric properties closely resemble those found in comparable ErAs:InGaAs nanocomposite materials. However, nanoparticles were not observed by scanning transmission electron microscopy in the highest ZT TbAs:InGaAs sample, unlike the highest ZT ErAs:InGaAs sample (0.2% ErAs) and two higher concentration TbAs:InGaAs samples examined. Consistent with expectations concerning the positioning of the Fermi level in these materials, ZT was enhanced by TbAs incorporation largely due to a high Seebeck coefficient, whereas ErAs provided InGaAs with higher conductivity but a lower Seebeck coefficient than that of TbAs:InGaAs. Thermal conductivity was reduced significantly from that of intrinsic thin-film InGaAs only with TbAs concentrations greater than {approx}1.7%.

OSTI ID:
22038955
Journal Information:
Journal of Applied Physics, Vol. 111, Issue 9; Other Information: (c) 2012 American Institute of Physics; Country of input: International Atomic Energy Agency (IAEA); ISSN 0021-8979
Country of Publication:
United States
Language:
English