Oxidation Control to Augment Interfacial Charge Transport in Te‐P3HT Hybrid Materials for High Thermoelectric Performance

Author:

Shah Syed Zulfiqar Hussain12,Ding Zhenyu34,Aabdin Zainul1,Tjiu Weng Weei1,Recatala‐Gomez Jose5,Dai Haiwen5,Yang Xiaoping3,Maheswar Repaka Durga Venkata1,Wu Gang6,Hippalgaonkar Kedar15ORCID,Nandhakumar Iris2,Kumar Pawan1

Affiliation:

1. Institute of Materials Research and Engineering Agency for Science Technology and Research (A*STAR) Singapore 138634 Singapore

2. Department of Chemistry University of Southampton Southampton SO17 1BJ UK

3. High Magnetic Field Laboratory of Anhui Province High Magnetic Field Laboratory HFIPS Chinese Academy of Sciences Hefei 230031 China

4. Science Island Branch of Graduate School University of Science and Technology of China Hefei 230026 China

5. School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Block N4.1 Singapore 639798 Singapore

6. Institute of High‐Performance Computing Agency for Science Technology and Research (A*STAR) Singapore 138632 Republic of Singapore

Abstract

AbstractOrganic–inorganic hybrid thermoelectric (TE) materials have attracted tremendous interest for harvesting waste heat energy. Due to their mechanical flexibility, inorganic‐organic hybrid TE materials are considered to be promising candidates for flexible energy harvesting devices. In this work, enhanced TE properties of Tellurium (Te) nanowires (NWs)‐ poly (3‐hexylthiophene‐2, 5‐diyl) (P3HT) hybrid materials are reported by improving the charge transport at interfacial layer mediated via controlled oxidation. A power factor of ≈9.8 µW (mK2)−1 is obtained at room temperature for oxidized P3HT‐TeNWs hybrid materials, which increases to ≈64.8 µW (mK2)−1 upon control of TeNWs oxidation. This value is sevenfold higher compared to P3HT‐TeNWs‐based hybrid materials reported in the literature. MD simulation reveals that oxidation‐free TeNWs demonstrate better templating for P3HT polymer compared to oxidized TeNWs. The Kang–Snyder model is used to study the charge transport in these hybrid materials. A large σE0 value is obtained which is related to better templating of P3HT on oxygen‐free TeNWs. This work provides evidence that oxidation control of TeNWs is critical for better interface‐driven charge transport, which enhances the thermoelectric properties of TeNWs‐P3HT hybrid materials. This work provides a new avenue to improve the thermoelectric properties of a new class of hybrid thermoelectric materials.

Funder

EPSRC Centre for Doctoral Training in Technology Enhanced Chemical Synthesis

Science and Engineering Research Council

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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