Ionic Thermoelectric Generators in Vertical and Planar Topologies Based on Fluorinated Polymer Hybrid Materials with Ionic Liquids

Author:

Pereira Nelson1,Afonso Luis1,Salado Manuel2,Tubio Carmen R.2,Correia Daniela M.3,Costa Carlos M.1ORCID,Lanceros‐Mendez Senentxu124

Affiliation:

1. Centre of Physics Universities of Minho and Porto and Laboratory of Physics for Materials and Emergent Technologies, LapMET University of Minho Campus de Gualtar Braga 4710‐057 Portugal

2. BCMaterials Basque Center for Materials Applications and Nanostructures UPV/EHU Science Park Leioa 48940 Spain

3. Centre of Chemistry University of Minho Braga 4710‐057 Portugal

4. Ikerbasque Basque Foundation for Science Bilbao 48009 Spain

Abstract

AbstractIonic thermoelectrics (TEs), in which voltage generation is based on ion migration, are suitable for applications based on their low cost, high flexibility, high ionic conductivity, and wide range of Seebeck coefficients. This work reports on the development of ionic TE materials based on the poly(vinylidene fluoride‐trifluoroethylene), Poly(VDF‐co‐TrFE), as host polymer blended with different contents of the ionic liquid, IL, 1‐ethyl‐3‐methylimidazolium bis(trifluoromethylsulfonyl)imide, [EMIM][TFSI]. The morphology, physico‐chemical, thermal, mechanical, and electrical properties of the samples are evaluated together with the TE response. It is demonstrated that the IL acts as a nucleating agent for polymer crystallization. The mechanical properties and ionic conductivity values are dependent on the IL content. A high room temperature ionic conductivity of 0.008 S cm−1 is obtained for the sample with 60 wt% of [EMIM][TFSI] IL. The TE properties depend on both IL content and device topology‐vertical or planar‐the largest generated voltage range being obtained for the planar topology and the sample with 10 wt% of IL content, characterized by a Seebeck coefficient of 1.2 mV K−1. Based on the obtained maximum power density of 4.9 µW m−2, these materials are suitable for a new generation of TE devices.

Funder

Nuclear Fuel Cycle and Supply Chain

European Regional Development Fund

European Commission

Euskal Herriko Unibertsitatea

Fundação para a Ciência e a Tecnologia

Publisher

Wiley

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