• DocumentCode
    2012532
  • Title

    Combined Thermoelectric and Structure Characterizations of Patterned Nanowires

  • Author

    Mavrokefalos, Anastassios ; Pettes, Michael T. ; Saha, Sanjoy ; Zhou, Feng ; Shi, Li

  • Author_Institution
    Dept. of Mech. Eng., Texas Univ., Austin, TX
  • fYear
    2006
  • fDate
    6-10 Aug. 2006
  • Firstpage
    234
  • Lastpage
    237
  • Abstract
    Theoretical studies have suggested that Bi-based and III-V nanowire structures may have high thermoelectric figure of merit (ZT). It was found in a previous measurement that the thermoelectric properties of individual electro-deposited bismuth telluride nanowires are largely influenced by the crystal structure including crystalline quality, chemical composition, doping concentration, and surface roughness, all of which cannot be controlled readily in various bottom-up nanowire synthesis method. We have developed a top-down fabrication process of suspended indium arsenide (InAs) nanowires. Based on nanolithography and reactive ion etching, the nanowires are patterned from an epitaxial thin film deposited by molecular beam epitaxy with well-controlled doping concentration, which can be determined from Hall measurement. The thermoelectric properties of these top-down patterned III-V nanowires have been characterized using a new design of a suspended microdevice. The new device allows for transmission electron microscopy and energy dispersive X-ray spectroscopy analysis of the same nanowire assembled on the microdevice so as to establish the structure-thermoelectric properties relationships. This paper reports the measured thermoelectric properties of a patterned InAs nanowire with a rectangular cross section of 150 nm in width and 40 nm thickness in a temperature range between 100 K and 400 K. The obtained Seebeck coefficient, thermal conductivity, electrical conductivity, and ZT are -57.2 muV/K, 4.11 W/m K, 1350 S/m, and 0.00032, respectively, at temperature 300 K
  • Keywords
    Hall effect; III-V semiconductors; Seebeck effect; X-ray chemical analysis; doping profiles; electrical conductivity; electrical resistivity; indium compounds; molecular beam epitaxial growth; nanolithography; nanopatterning; nanowires; semiconductor epitaxial layers; sputter etching; thermal conductivity; transmission electron microscopy; 100 to 400 K; 150 nm; 40 nm; Hall measurement; III-V nanowires; InAs; Seebeck coefficient; doping concentration; electrical conductivity; energy dispersive X-ray spectroscopy; epitaxial thin film; molecular beam epitaxy; nanolithography; patterned nanowire structure characterization; patterned nanowire thermoelectric characterization; reactive ion etching; structure-thermoelectric relationships; suspended indium arsenide nanowires; suspended microdevice; thermal conductivity; thermoelectric ZT; thermoelectric figure of merit; top-down fabrication process; transmission electron microscopy; Bismuth; Chemicals; Crystallization; Doping; III-V semiconductor materials; Nanowires; Rough surfaces; Temperature distribution; Thermal conductivity; Thermoelectricity;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Thermoelectrics, 2006. ICT '06. 25th International Conference on
  • Conference_Location
    Vienna
  • ISSN
    1094-2734
  • Print_ISBN
    1-4244-0811-3
  • Electronic_ISBN
    1094-2734
  • Type

    conf

  • DOI
    10.1109/ICT.2006.331358
  • Filename
    4133277