Design of experiment optimization of aligned polymer thermoelectrics doped by ion-exchange
Type
ArticleAuthors
Huang, Yuxuan
Lukito Tjhe, Dionisius Hardjo

Jacobs, Ian

Jiao, Xuechen
He, Qiao
Statz, Martin

Ren, Xinglong

Huang, Xinyi
McCulloch, Iain

Heeney, Martin

McNeill, Christopher R.

Sirringhaus, Henning

KAUST Department
Chemical Science ProgramKAUST Solar Center (KSC)
Physical Science and Engineering (PSE) Division
Date
2021-09-13Submitted Date
2021-05-04Permanent link to this record
http://hdl.handle.net/10754/671298
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Organic thermoelectrics offer the potential to deliver flexible, low-cost devices that can directly convert heat to electricity. Previous studies have reported high conductivity and thermoelectric power factor in the conjugated polymer poly[2,5-bis(3-tetradecylthiophen-2-yl)thieno[3,2-b]thiophene] (PBTTT). Here, we investigate the thermoelectric properties of PBTTT films in which the polymer chains were aligned uniaxially by mechanical rubbing, and the films were doped by a recently developed ion exchange technique that provides a choice over the counterions incorporated into the film, allowing for more optimized morphology and better stability than conventional charge transfer doping. To optimize the polymer alignment process, we took advantage of two Design of Experiment (DOE) techniques: regular two-level factorial design and central composite design. Rubbing temperature Trub and post-alignment annealing temperature Tanneal were the two factors that were most strongly correlated with conductivity. We were able to achieve high polymer alignment with a dichroic ratio >15 and high electrical conductivities of up to 4345 S/cm for transport parallel to the polymer chains, demonstrating that the ion exchange method can achieve conductivities comparable/higher than conventional charge transfer doping. While the conductivity of aligned films increased by a factor of 4 compared to unaligned films, the Seebeck coefficient (S) remained nearly unchanged. The combination of DOE methodology, high-temperature rubbing, and ion exchange doping provides a systematic, controllable strategy to tune structure–thermoelectric property relationships in semiconducting polymersCitation
Huang, Y., Lukito Tjhe, D. H., Jacobs, I. E., Jiao, X., He, Q., Statz, M., … Sirringhaus, H. (2021). Design of experiment optimization of aligned polymer thermoelectrics doped by ion-exchange. Applied Physics Letters, 119(11), 111903. doi:10.1063/5.0055886Publisher
AIP PublishingJournal
Applied Physics LettersAdditional Links
https://aip.scitation.org/doi/10.1063/5.0055886Relations
Is Supplemented By:- [Dataset]
Huang, Y., Tjhe, D., Jacobs, I., Jiao, X., He, Q., Statz, M., Ren, X., Huang, X., McCulloach, I., Heeney, M., McNeill, C., & Sirringhaus, H. (2021). Research data supporting "Design of Experiment Optimization of Aligned Polymer Thermoelectrics Doped by Ion-Exchange" [Data set]. Apollo - University of Cambridge Repository. https://doi.org/10.17863/CAM.74823. DOI: 10.17863/cam.74823 Handle: 10754/674162
ae974a485f413a2113503eed53cd6c53
10.1063/5.0055886
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