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The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?

The capacitance of conducting polymers represents one of the most important material parameters that in many cases determines the device and material performances. Despite a vast number of experimental studies, the theoretical understanding of the origin of the capacitance in conducting polymers rem...

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Autores principales: Sahalianov, Ihor, Singh, Sandeep Kumar, Tybrandt, Klas, Berggren, Magnus, Zozoulenko, Igor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076818/
https://www.ncbi.nlm.nih.gov/pubmed/35542835
http://dx.doi.org/10.1039/c9ra10250g
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author Sahalianov, Ihor
Singh, Sandeep Kumar
Tybrandt, Klas
Berggren, Magnus
Zozoulenko, Igor
author_facet Sahalianov, Ihor
Singh, Sandeep Kumar
Tybrandt, Klas
Berggren, Magnus
Zozoulenko, Igor
author_sort Sahalianov, Ihor
collection PubMed
description The capacitance of conducting polymers represents one of the most important material parameters that in many cases determines the device and material performances. Despite a vast number of experimental studies, the theoretical understanding of the origin of the capacitance in conducting polymers remains unsatisfactory and appears even controversial. Here, we present a theoretical method, based on first principle capacitance calculations using density functional theory (DFT), and apply it to calculate the volumetric capacitance of two archetypical conducting polymers: poly(3,4-ethylene dioxythiophene) (PEDOT) and polypyrrole (PPy). Our aim is to achieve a quantitate description of the volumetric capacitance and to provide a qualitative understanding of its nature at the atomistic level. We find that the volumetric capacitance of PEDOT and PPy is ≈100 F cm(−3) and ≈300 F cm(−3), respectively, which is within the range of the corresponding reported experimental results. We demonstrate that the capacitance of conducting polymers originates from charges stored in atomistic Stern layers formed by counterions and doped polymeric chains. The Stern layers have a purely electrostatic origin, since the counterions do not form any bonds with the atoms of the polymeric chains, and no charge transfer between the counterions and conducting polymer takes place. This classifies the conducting polymers as double-layer supercapacitors rather than pseudo-capacitors. Further, we analyze contributions to the total capacitance originating from the classical capacitance C(C) and the quantum capacitance C(Q), respectively, and find that the latter provides a dominant contribution. The method of calculations of the capacitance developed in the present paper is rather general and opens up the way for engineering and optimizing the capacitive response of the conducting polymers.
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spelling pubmed-90768182022-05-09 The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors? Sahalianov, Ihor Singh, Sandeep Kumar Tybrandt, Klas Berggren, Magnus Zozoulenko, Igor RSC Adv Chemistry The capacitance of conducting polymers represents one of the most important material parameters that in many cases determines the device and material performances. Despite a vast number of experimental studies, the theoretical understanding of the origin of the capacitance in conducting polymers remains unsatisfactory and appears even controversial. Here, we present a theoretical method, based on first principle capacitance calculations using density functional theory (DFT), and apply it to calculate the volumetric capacitance of two archetypical conducting polymers: poly(3,4-ethylene dioxythiophene) (PEDOT) and polypyrrole (PPy). Our aim is to achieve a quantitate description of the volumetric capacitance and to provide a qualitative understanding of its nature at the atomistic level. We find that the volumetric capacitance of PEDOT and PPy is ≈100 F cm(−3) and ≈300 F cm(−3), respectively, which is within the range of the corresponding reported experimental results. We demonstrate that the capacitance of conducting polymers originates from charges stored in atomistic Stern layers formed by counterions and doped polymeric chains. The Stern layers have a purely electrostatic origin, since the counterions do not form any bonds with the atoms of the polymeric chains, and no charge transfer between the counterions and conducting polymer takes place. This classifies the conducting polymers as double-layer supercapacitors rather than pseudo-capacitors. Further, we analyze contributions to the total capacitance originating from the classical capacitance C(C) and the quantum capacitance C(Q), respectively, and find that the latter provides a dominant contribution. The method of calculations of the capacitance developed in the present paper is rather general and opens up the way for engineering and optimizing the capacitive response of the conducting polymers. The Royal Society of Chemistry 2019-12-20 /pmc/articles/PMC9076818/ /pubmed/35542835 http://dx.doi.org/10.1039/c9ra10250g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sahalianov, Ihor
Singh, Sandeep Kumar
Tybrandt, Klas
Berggren, Magnus
Zozoulenko, Igor
The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
title The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
title_full The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
title_fullStr The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
title_full_unstemmed The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
title_short The intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
title_sort intrinsic volumetric capacitance of conducting polymers: pseudo-capacitors or double-layer supercapacitors?
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076818/
https://www.ncbi.nlm.nih.gov/pubmed/35542835
http://dx.doi.org/10.1039/c9ra10250g
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