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Multifaceted Tuning of PEDOT:PSS with Electron-Withdrawing Effect for Superior Thermoelectric Performance
Zishun Zhou1, Jiajun Wang2, Mingjie Wang1
1State Key Laboratory of Solidification Processing, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an710072, P.R. China.
Abstract:
Flexible organic thermoelectric materials hold promise for wearable electronics and low-grade waste heat recovery, yet their performance is limited by the trade-off between electrical conductivity and the Seebeck coefficient. Here, we report a molecular-level strategy to enhance PEDOT:PSS films via electron-withdrawing substituents in benzoic acid. Fluoro (-F) and cyano (-CN) groups synergistically tune chain conformation, molecular ordering, and carrier-state distribution. Furthermore, the cyano and fluoro groups introduce energy barriers that selectively filter low-energy carriers, thereby reducing bipolaron content and boosting the Seebeck coefficient, while facilitating PSS removal and improving electrical conductivity. The optimized DMSO:2-fluoro-5-cyanobenzoic acid (DMSO:2F5CBA) treated film exhibits a conductivity of >1200 S cm-1, a Seebeck coefficient of 43.8 μV K-1, and a power factor of 188.89 μW m-1 K-2. Spectroscopic and morphological analyses confirm effective modulation of carrier states, chain ordering, and phase separation. This work demonstrates a multifaceted approach where energy filtering and structural optimization synergistically enhance thermoelectric performance, providing a promising route toward high-performance flexible organic thermoelectrics.
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