Enhancement of ZT in Bi0.5Sb1.5Te3 Thin Film through Lattice Orientation Management

Author:

Tsai Wei-Han123,Chen Cheng-Lung4,Vankayala Ranganayakulu K.2,Lo Ying-Hsiang2,Hsieh Wen-Pin5ORCID,Wang Te-Hsien6,Huang Ssu-Yen1,Chen Yang-Yuan27ORCID

Affiliation:

1. Department of Physics, National Taiwan University, Taipei 10617, Taiwan

2. Institute of Physics, Academia Sinica, Taipei 115, Taiwan

3. Nano Science and Technology Program, Taiwan International Graduate Program, Taipei 115201, Taiwan

4. Graduate School of Materials Science, National Yunlin University of Science and Technology, Yunlin 64002, Taiwan

5. Institute of Earth Sciences, Academia Sinica, Taipei 11529, Taiwan

6. Department of Physics, National Chung Hsing University, Taichung 40227, Taiwan

7. Graduate Institute of Applied Physics, National Chengchi University, Taipei 11605, Taiwan

Abstract

Thermoelectric power can convert heat and electricity directly and reversibly. Low-dimensional thermoelectric materials, particularly thin films, have been considered a breakthrough for separating electronic and thermal transport relationships. In this study, a series of Bi0.5Sb1.5Te3 thin films with thicknesses of 0.125, 0.25, 0.5, and 1 μm have been fabricated by RF sputtering for the study of thickness effects on thermoelectric properties. We demonstrated that microstructure (texture) changes highly correlate with the growth thickness in the films, and equilibrium annealing significantly improves the thermoelectric performance, resulting in a remarkable enhancement in the thermoelectric performance. Consequently, the 0.5 μm thin films achieve an exceptional power factor of 18.1 μWcm−1K−2 at 400 K. Furthermore, we utilize a novel method that involves exfoliating a nanosized film and cutting with a focused ion beam, enabling precise in-plane thermal conductivity measurements through the 3ω method. We obtain the in-plane thermal conductivity as low as 0.3 Wm−1K−1, leading to a maximum ZT of 1.86, nearing room temperature. Our results provide significant insights into advanced thin-film thermoelectric design and fabrication, boosting high-performance systems.

Funder

National Science and Technology Council

Publisher

MDPI AG

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