access icon free De-embedding method-based electrical resistivity characterisation scheme for a small brittle pillar-shaped material

An electrical resistivity evaluation method for a pillar-shaped solid material, especially a brittle thermoelectric Bi2Te3, is presented with short compensation based on a probing apparatus with four-spring pins. The method eliminates the process of modelling a complex contact resistance, resulting in a simple but reproducible characterisation without any contamination on the surface in comparison to either a conventional paste or welding contact. Furthermore, it enables a small electrical or thermoelectric material <2 mm thick to be appropriately evaluated, which can erect and align a pillar-shaped material with electrical terminals, in spite of a small surface area. To extract the resistivity of a Bi2Te3 pillar with the volume of 2 × 2 × 1.6 mm, Alumina 6061-T6 material identical with that of Bi2Te3 was used as a reference material for the short compensation. Thus, the modelled resistance and its resistivity were 2.46 ± 0.11 mΩ and 6.15 ± 0.28 Ω-μm, respectively, in the range of 2–10 kHz, demonstrating the validity of the method.

Inspec keywords: electrical resistivity; brittleness; bismuth compounds; alumina; thermoelectricity; contact resistance

Other keywords: welding contact; alumina 6061-T6 material; electrical resistivity evaluation method; complex contact resistance modelling; Bi2Te3; frequency 2 kHz to 10 kHz; brittle thermoelectric material; de-embedding method-based electrical resistivity characterisation scheme; Al2O3; conventional paste; probing apparatus; small brittle pillar-shaped solid material; small surface area; four-spring pins; electrical terminals

Subjects: Fatigue, embrittlement, and fracture; Contact resistance, contact potential, and work functions; Fatigue, brittleness, fracture, and cracks

References

    1. 1)
    2. 2)
    3. 3)
    4. 4)
      • 6. Resistivity of Alumina 6061-T6: ‘6061-T6 aluminum-material notes’, http://www.glemco.com, accessed April 2017.
    5. 5)
    6. 6)
      • 5. Thermoelectric material dimension: ‘thermoelectric coolers MC04 series’, http://www.rmtltd.ru/products/temodules/mc/04/, accessed April 2017.
http://iet.metastore.ingenta.com/content/journals/10.1049/el.2017.1508
Loading

Related content

content/journals/10.1049/el.2017.1508
pub_keyword,iet_inspecKeyword,pub_concept
6
6
Loading
Correspondence
This article has following corresponding article(s):
in brief