Exceptional Performance of Room Temperature Sputtered Flexible Thermoelectric Thin Film Using High Target Utilisation Sputtering Technique

Author:

Tao Xudong1ORCID,Dutson James2,Zeng Chongyang3,Asker Ceyla4,Luong Sally4,Reza Abdallah5,Hao Botao1,Zhang Zheng1,Ellingford Joshua2,Bonilla Ruy Sebastian1,Fenwick Oliver4,Bilotti Emiliano3,Hofmann Felix5,Thwaites Mike2,Assender Hazel E.1

Affiliation:

1. Department of Materials University of Oxford Parks Road Oxford OX1 3PH UK

2. Plasma Quest Limited Unit 1B Rose Estate, Osborn Way Hook Hampshire RG27 9UT UK

3. Department of Aeronautics Imperial College London Exhibition Road London SW7 2AZ UK

4. School of Engineering and Materials Science Queen Mary University of London Mile End Road London E1 4NS UK

5. Department of Engineering Science University of Oxford Parks Road Oxford OX1 3PJ UK

Abstract

AbstractThe High Target Utilisation Sputtering technique (HiTUS) is of interest for industrial processes, including in roll‐to‐roll manufacturing. This study marks the first application of HiTUS to thermoelectric materials, exemplified by bismuth telluride. The HiTUS technique separates the sputtering power into the plasma power and the target power, with additional kinetic energy in the sputtering particles from the applied electrical field, thus enabling a much wider sputter parameter space to modify the film performance. This study investigates how plasma power, target power, and substrate bias in HiTUS intricately influence crystal orientation/size, elemental composition, surface morphology, and other film properties. These factors subsequently affect carrier density/mobility, and consequently the thermoelectric performance of the bismuth telluride film. These deposited films reach a power factor of 6.5 × 10−4 W m−1 K−2 with a figure of merit ≈0.14 at room temperature, the highest value for room‐temperature sputtered un‐doped bismuth telluride. Subsequent post‐deposition annealing significantly enhances the crystallinity of the film (highly polycrystalline), further improving the power factor to 23.5 × 10−4 W m−1 K‐2, with a figure of merit ≈0.45 at room temperature. The excellent performance of the HiTUS fabricated thermoelectric film opens opportunities for the large‐area manufacture of thin‐film thermoelectric materials and devices.

Funder

Engineering and Physical Sciences Research Council

Royal Academy of Engineering

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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