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Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques

[Image: see text] Chemically doped poly[2,5-bis(3-alkylthiophen-2-yl)thieno[3,2-b]thiophene] (PBTTT) shows promise for many organic electronic applications, but rationalizing its charge transport properties is challenging because conjugated polymers are inhomogeneous, with convoluted optical and sol...

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Autores principales: Gregory, Shawn A., Atassi, Amalie, Ponder, James F., Freychet, Guillaume, Su, Gregory M., Reynolds, John R., Losego, Mark D., Yee, Shannon K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10320779/
https://www.ncbi.nlm.nih.gov/pubmed/37415971
http://dx.doi.org/10.1021/acs.jpcc.3c01152
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author Gregory, Shawn A.
Atassi, Amalie
Ponder, James F.
Freychet, Guillaume
Su, Gregory M.
Reynolds, John R.
Losego, Mark D.
Yee, Shannon K.
author_facet Gregory, Shawn A.
Atassi, Amalie
Ponder, James F.
Freychet, Guillaume
Su, Gregory M.
Reynolds, John R.
Losego, Mark D.
Yee, Shannon K.
author_sort Gregory, Shawn A.
collection PubMed
description [Image: see text] Chemically doped poly[2,5-bis(3-alkylthiophen-2-yl)thieno[3,2-b]thiophene] (PBTTT) shows promise for many organic electronic applications, but rationalizing its charge transport properties is challenging because conjugated polymers are inhomogeneous, with convoluted optical and solid-state transport properties. Herein, we use the semilocalized transport (SLoT) model to quantify how the charge transport properties of PBTTT change as a function of iron(III) chloride (FeCl(3)) doping level. We use the SLoT model to calculate fundamental transport parameters, including the carrier density needed for metal-like electrical conductivities and the position of the Fermi energy level with respect to the transport edge. We then contextualize these parameters with other polymer-dopant systems and previous PBTTT reports. Additionally, we use grazing incidence wide-angle X-ray scattering and spectroscopic ellipsometry techniques to better characterize inhomogeneity in PBTTT. Our analyses indicate that PBTTT obtains high electrical conductivities due to its quickly rising reduced Fermi energy level, and this rise is afforded by its locally high carrier densities in highly ordered microdomains. Ultimately, this report sets a benchmark for comparing transport properties across polymer-dopant-processing systems.
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spelling pubmed-103207792023-07-06 Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques Gregory, Shawn A. Atassi, Amalie Ponder, James F. Freychet, Guillaume Su, Gregory M. Reynolds, John R. Losego, Mark D. Yee, Shannon K. J Phys Chem C Nanomater Interfaces [Image: see text] Chemically doped poly[2,5-bis(3-alkylthiophen-2-yl)thieno[3,2-b]thiophene] (PBTTT) shows promise for many organic electronic applications, but rationalizing its charge transport properties is challenging because conjugated polymers are inhomogeneous, with convoluted optical and solid-state transport properties. Herein, we use the semilocalized transport (SLoT) model to quantify how the charge transport properties of PBTTT change as a function of iron(III) chloride (FeCl(3)) doping level. We use the SLoT model to calculate fundamental transport parameters, including the carrier density needed for metal-like electrical conductivities and the position of the Fermi energy level with respect to the transport edge. We then contextualize these parameters with other polymer-dopant systems and previous PBTTT reports. Additionally, we use grazing incidence wide-angle X-ray scattering and spectroscopic ellipsometry techniques to better characterize inhomogeneity in PBTTT. Our analyses indicate that PBTTT obtains high electrical conductivities due to its quickly rising reduced Fermi energy level, and this rise is afforded by its locally high carrier densities in highly ordered microdomains. Ultimately, this report sets a benchmark for comparing transport properties across polymer-dopant-processing systems. American Chemical Society 2023-06-14 /pmc/articles/PMC10320779/ /pubmed/37415971 http://dx.doi.org/10.1021/acs.jpcc.3c01152 Text en © 2023 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Gregory, Shawn A.
Atassi, Amalie
Ponder, James F.
Freychet, Guillaume
Su, Gregory M.
Reynolds, John R.
Losego, Mark D.
Yee, Shannon K.
Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques
title Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques
title_full Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques
title_fullStr Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques
title_full_unstemmed Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques
title_short Quantifying Charge Carrier Localization in PBTTT Using Thermoelectric and Spectroscopic Techniques
title_sort quantifying charge carrier localization in pbttt using thermoelectric and spectroscopic techniques
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10320779/
https://www.ncbi.nlm.nih.gov/pubmed/37415971
http://dx.doi.org/10.1021/acs.jpcc.3c01152
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