High figure-of-merit for ZnO nanostructures by interfacing lowly-oxidized graphene quantum dots

Author:

Choi Myungwoo,An Juyoung,Lee Hyejeong,Jang HanhwiORCID,Park Ji Hong,Cho DonghwiORCID,Song Jae Yong,Kim Seung MinORCID,Oh Min-WookORCID,Shin HosunORCID,Jeon SeokwooORCID

Abstract

AbstractThermoelectric technology has potential for converting waste heat into electricity. Although traditional thermoelectric materials exhibit extremely high thermoelectric performances, their scarcity and toxicity limit their applications. Zinc oxide (ZnO) emerges as a promising alternative owing to its high thermal stability and relatively high Seebeck coefficient, while also being earth-abundant and nontoxic. However, its high thermal conductivity (>40 W m−1K−1) remains a challenge. In this study, we use a multi-step strategy to achieve a significantly high dimensionless figure-of-merit (zT) value of approximately 0.486 at 580 K (estimated value) by interfacing graphene quantum dots with 3D nanostructured ZnO. Here, we show the fabrication of graphene quantum dots interfaced 3D ZnO, yielding the highest zT value ever reported for ZnO counterparts; specifically, our experimental results indicate that the fabricated 3D GQD@ZnO exhibited a significantly low thermal conductivity of 0.785 W m−1K−1 (estimated value) and a remarkably high Seebeck coefficient of $$-$$ 556 μV K−1 at 580 K.

Funder

National Research Foundation of Korea

Korea Research Institute of Standards and Science

Publisher

Springer Science and Business Media LLC

Reference64 articles.

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