Polaron interfacial entropy as a route to high thermoelectric performance in DAE-doped PEDOT:PSS films

Author:

Zhang Jiajia1,Ye Caichao12,Wei Genwang12,Guo Liang3,Cai Yuhang3,Li Zhi3,Wu Xinzhi1,Sun Fangyi1,Li Qikai1,Wang Yupeng1,Li Huan1,Li Yuchen1,Wang Shuaihua1,Xu Wei4,Guo Xuefeng5,Zhang Wenqing12,Liu Weishu16

Affiliation:

1. Department of Materials Science and Engineering, Southern University of Science and Technology , Shenzhen 518055 , China

2. Academy for Advanced Interdisciplinary Studies and Guangdong Provincial Key Laboratory of Computational Science and Material Design, Southern University of Science and Technology , Shenzhen 518055 , China

3. Department of Mechanical and Energy Engineering, Southern University of Science and Technology , Shenzhen 518055 , China

4. Beijing National Laboratory for Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences , Beijing 100190, China

5. College of Chemistry and Molecular Engineering, National Biomedical Imaging Centre, Peking University , Beijing 100091 , China

6. Guangdong Provincial Key Laboratory of Functional Oxide Materials and Devices, Southern University of Science and Technology , Shenzhen 518055 , China

Abstract

ABSTRACT Enhancing the thermoelectric transport properties of conductive polymer materials has been a long-term challenge, in spite of the success seen with molecular doping strategies. However, the strong coupling between the thermopower and the electrical conductivity limits thermoelectric performance. Here, we use polaron interfacial occupied entropy engineering to break through this intercoupling for a PEDOT:PSS (poly(3,4-ethylenedioxythiophene)-poly(4-styrenesulfonate)) thin film by using photochromic diarylethene (DAE) dopants coupled with UV-light modulation. With a 10-fold enhancement of the thermopower from 13.5 μV K−1 to 135.4 μV K−1 and almost unchanged electrical conductivity, the DAE-doped PEDOT:PSS thin film achieved an extremely high power factor of 521.28 μW m−1 K−2 from an original value of 6.78 μW m−1 K−2. The thermopower was positively correlated with the UV-light intensity but decreased with increasing temperature, indicating resonant coupling between the planar closed DAE molecule and PEDOT. Both the experiments and theoretical calculations consistently confirmed the formation of an interface state due to this resonant coupling. Interfacial entropy engineering of polarons could play a critical role in enhancing the thermoelectric performance of the organic film.

Funder

National Key Research and Development Program of China

Publisher

Oxford University Press (OUP)

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