Enhancing the Conductivity and Thermoelectric Performance of Semicrystalline Conducting Polymers through Controlled Tie Chain Incorporation

Author:

Zhu Wenjin1,Qiu Xinkai1,Laulainen Joonatan E. M.2,Un Hio‐leng1,Ren Xinglong1,Xiao Mingfei1,Freychet Guillaume3,Vacek Petr2,Tjhe Dion1,He Qiao4,Wood William1,Wang Zichen1,Zhang Youcheng1,Qu Zhengkang1,Asatryan Jesika5,Martin Jaime56,Heeney Martin4,McNeill Christopher R.7,Midgley Paul A.2,Jacobs Ian E.1,Sirringhaus Henning1ORCID

Affiliation:

1. Optoelectronics Group Cavendish Laboratory University of Cambridge JJ Thomson Avenue Cambridge CB3 0HE UK

2. Department of Materials Science and Engineering University of Cambridge Cambridge CB3 0FS UK

3. University of Grenoble Alpes CEA Leti Grenoble F‐38000 France

4. Department of Chemistry Imperial College London London SW72AZ UK

5. Centro de Investigacións Tecnolóxicas (CIT) Campus Industrial de Ferrol Universidade da Coruña Esteiro Ferrol 15471 Spain

6. POLYMAT Paseo Manuel de Lardizabal 3 Donostia‐San Sebastián 20018 Spain

7. Department of Materials Science and Engineering Monash University Clayton Victoria 3800 Australia

Abstract

AbstractConjugated polymers are promising materials for thermoelectric applications, however, at present few effective and well‐understood strategies exist to further advance their thermoelectric performance. Here a new model system is reported for a better understanding of the key factors governing their thermoelectric properties: aligned, ribbon‐phase poly[2,5‐bis(3‐dodecylthiophen‐2‐yl)thieno[3,2‐b]thiophene] (PBTTT) doped by ion‐exchange doping. Using a range of microstructural and spectroscopic methods, the effect of controlled incorporation of tie‐chains between the crystalline domains is studied through blending of high and low molecular weight chains. The tie chains provide efficient transport pathways between crystalline domains and lead to significantly enhanced electrical conductivity of 4810 S cm−1, which is not accompanied by a reduction in Seebeck coefficient or a large increase in thermal conductivity. Respectable power factors of 173 µW m−1 K−2 are demonstrated in this model system. The approach is generally applicable to a wide range of semicrystalline conjugated polymers and could provide an effective pathway for further enhancing their thermoelectric properties and overcome traditional trade‐offs in optimization of thermoelectric performance.

Funder

H2020 European Research Council

Engineering and Physical Sciences Research Council

Publisher

Wiley

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