Novel Dithienopyrrole-Based Conjugated Copolymers: Importance of Backbone Planarity in Achieving High Electrical Conductivity and Thermoelectric Performance

  • Lee, Hansol
  • Li, Huan
  • Kim, Young-Shin
  • Park, Sang Min
  • Lee, Dongki
  • ... Kim, Yun-Hi
  • 외 3명
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초록

The development of conjugated polymers with structures that are suitable for efficient molecular doping and charge transport is a key challenge in the construction of high-performance conjugated polymer-based thermoelectric devices. In this study, three novel conjugated polymers based on dithienopyrrole (DTP) are synthesized and their thermoelectric properties are compared. When doped with p-dopant, a donor-acceptor type copolymer, DPP-MeDTP, exhibits higher electrical conductivity and thermoelectric power factor compared to the other donor-donor type copolymers. The high electrical conductivity of DPP-MeDTP compared to the other polymers originates from the high degree of backbone planarity and molecular order, which contributes to its high charge carrier mobility. In addition, the highly crystalline structure of DPP-MeDTP is well maintained upon doping, while the crystalline order of the other polymers decreases significantly upon doping. The findings of this work not only provide insights into the design of DTP-based conjugated polymers for thermoelectric use but also demonstrate the significance of a high degree of molecular order and structural robustness upon doping to achieve high thermoelectric performance.

키워드

conjugated polymersdithienopyrroleselectrical conductivitymolecular dopingorganic thermoelectricsDONOR-ACCEPTOR COPOLYMERSORGANIC SEMICONDUCTORSDOPING EFFICIENCYCHARGE-TRANSPORTPOLYMERMOBILITY
제목
Novel Dithienopyrrole-Based Conjugated Copolymers: Importance of Backbone Planarity in Achieving High Electrical Conductivity and Thermoelectric Performance
저자
Lee, HansolLi, HuanKim, Young-ShinPark, Sang MinLee, DongkiLee, SungjooLee, Hwa SungKim, Yun-HiKang, Boseok
DOI
10.1002/marc.202200277
발행일
2022-10
유형
Article
저널명
Macromolecular Rapid Communications
43
19