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Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors

Nanoporous polymers are becoming increasingly interesting materials for electrochemical applications, as their large surface areas with redox-active sites allow efficient adsorption and diffusion of ions. However, their limited electrical conductivity remains a major obstacle in practical applicatio...

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Autores principales: Fernando, Niranjala, Veldhuizen, Hugo, Nagai, Atsushi, van der Zwaag, Sybrand, Abdelkader, Amor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745899/
https://www.ncbi.nlm.nih.gov/pubmed/35009150
http://dx.doi.org/10.3390/ma15010004
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author Fernando, Niranjala
Veldhuizen, Hugo
Nagai, Atsushi
van der Zwaag, Sybrand
Abdelkader, Amor
author_facet Fernando, Niranjala
Veldhuizen, Hugo
Nagai, Atsushi
van der Zwaag, Sybrand
Abdelkader, Amor
author_sort Fernando, Niranjala
collection PubMed
description Nanoporous polymers are becoming increasingly interesting materials for electrochemical applications, as their large surface areas with redox-active sites allow efficient adsorption and diffusion of ions. However, their limited electrical conductivity remains a major obstacle in practical applications. The conventional approach that alleviates this problem is the hybridisation of the polymer with carbon-based additives, but this directly prevents the utilisation of the maximum capacity of the polymers. Here, we report a layer-by-layer fabrication technique where we separated the active (porous polymer, top) layer and the conductive (carbon, bottom) layer and used these “layered” electrodes in a supercapacitor (SC). Through this approach, direct contact with the electrolyte and polymer material is greatly enhanced. With extensive electrochemical characterisation techniques, we show that the layered electrodes allowed a significant contribution of fast faradic surface reactions to the overall capacitance. The electrochemical performance of the layered-electrode SC outperformed other reported porous polymer-based devices with a specific gravimetric capacitance of 388 F·g(−1) and an outstanding energy density of 65 Wh·kg(−1) at a current density of 0.4 A·g(−1). The device also showed outstanding cyclability with 90% of capacitance retention after 5000 cycles at 1.6 A·g(−1), comparable to the reported porous polymer-based SCs. Thus, the introduction of a layered electrode structure would pave the way for more effective utilisation of porous organic polymers in future energy storage/harvesting and sensing devices by exploiting their nanoporous architecture and limiting the negative effects of the carbon/binder matrix.
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spelling pubmed-87458992022-01-11 Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors Fernando, Niranjala Veldhuizen, Hugo Nagai, Atsushi van der Zwaag, Sybrand Abdelkader, Amor Materials (Basel) Article Nanoporous polymers are becoming increasingly interesting materials for electrochemical applications, as their large surface areas with redox-active sites allow efficient adsorption and diffusion of ions. However, their limited electrical conductivity remains a major obstacle in practical applications. The conventional approach that alleviates this problem is the hybridisation of the polymer with carbon-based additives, but this directly prevents the utilisation of the maximum capacity of the polymers. Here, we report a layer-by-layer fabrication technique where we separated the active (porous polymer, top) layer and the conductive (carbon, bottom) layer and used these “layered” electrodes in a supercapacitor (SC). Through this approach, direct contact with the electrolyte and polymer material is greatly enhanced. With extensive electrochemical characterisation techniques, we show that the layered electrodes allowed a significant contribution of fast faradic surface reactions to the overall capacitance. The electrochemical performance of the layered-electrode SC outperformed other reported porous polymer-based devices with a specific gravimetric capacitance of 388 F·g(−1) and an outstanding energy density of 65 Wh·kg(−1) at a current density of 0.4 A·g(−1). The device also showed outstanding cyclability with 90% of capacitance retention after 5000 cycles at 1.6 A·g(−1), comparable to the reported porous polymer-based SCs. Thus, the introduction of a layered electrode structure would pave the way for more effective utilisation of porous organic polymers in future energy storage/harvesting and sensing devices by exploiting their nanoporous architecture and limiting the negative effects of the carbon/binder matrix. MDPI 2021-12-21 /pmc/articles/PMC8745899/ /pubmed/35009150 http://dx.doi.org/10.3390/ma15010004 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fernando, Niranjala
Veldhuizen, Hugo
Nagai, Atsushi
van der Zwaag, Sybrand
Abdelkader, Amor
Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors
title Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors
title_full Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors
title_fullStr Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors
title_full_unstemmed Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors
title_short Layer-by-Layer Electrode Fabrication for Improved Performance of Porous Polyimide-Based Supercapacitors
title_sort layer-by-layer electrode fabrication for improved performance of porous polyimide-based supercapacitors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745899/
https://www.ncbi.nlm.nih.gov/pubmed/35009150
http://dx.doi.org/10.3390/ma15010004
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