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Amphipathic Side Chain of a Conjugated Polymer Optimizes Dopant Location toward Efficient N-Type Organic Thermoelectrics

Authors :
Thomas D. Anthopoulos
Chen Yao
Ryan C. Chiechi
Derya Baran
Hinderikus G. O. Potgieser
Remco W. A. Havenith
Diego Rosas Villalva
Giuseppe Portale
Jingjin Dong
Selim Sami
L. Jan Anton Koster
Gang Ye
Jian Liu
Marten Koopmans
Simone Fabiano
Xinkai Qiu
Hengda Sun
Xuwen Yang
Mohamad Insan Nugraha
Photophysics and OptoElectronics
Molecular Energy Materials
Theoretical Chemistry
Macromolecular Chemistry & New Polymeric Materials
Source :
ADVANCED MATERIALS, Advanced materials. WILEY-V C H VERLAG GMBH
Publication Year :
2020

Abstract

There is no molecular strategy for selectively increasing the Seebeck coefficient without reducing the electrical conductivity for organic thermoelectrics. Here, it is reported that the use of amphipathic side chains in an n-type donor-acceptor copolymer can selectively increase the Seebeck coefficient and thus increase the power factor by a factor of approximate to 5. The amphipathic side chain contains an alkyl chain segment as a spacer between the polymer backbone and an ethylene glycol type chain segment. The use of this alkyl spacer does not only reduce the energetic disorder in the conjugated polymer film but can also properly control the dopant sites away from the backbone, which minimizes the adverse influence of counterions. As confirmed by kinetic Monte Carlo simulations with the host-dopant distance as the only variable, a reduced Coulombic interaction resulting from a larger host-dopant distance contributes to a higher Seebeck coefficient for a given electrical conductivity. Finally, an optimized power factor of 18 mu W m(-1) K-2 is achieved in the doped polymer film. This work provides a facile molecular strategy for selectively improving the Seebeck coefficient and opens up a new route for optimizing the dopant location toward realizing better n-type polymeric thermoelectrics. Funding Agencies|STW/NWOTechnologiestichting STWNetherlands Organization for Scientific Research (NWO) [VIDI 13476]; China Scholarship CouncilChina Scholarship Council; Center for Information Technology of the University of Groningen; Swedish Research CouncilSwedish Research Council [2016-03979]; Olle Engkvists Stiftelse [204-0256]; Advanced Functional Materials center at LiU [2009 00971]; King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) [OSR-CRG2018-3737]; NWO Exact and Natural Sciences [2020/ENW/00852342]

Details

ISSN :
15214095 and 09359648
Volume :
33
Issue :
4
Database :
OpenAIRE
Journal :
Advanced materials (Deerfield Beach, Fla.)
Accession number :
edsair.doi.dedup.....791dd522c13e62b6ee5c411bafc73430