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Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface

Supercapacitors (SCs) are short-term energy storage elements that find many applications, e.g., electronic charging devices and suppressors of power fluctuations in grids that are interfaced with sustainable sources. The capacitance of an ordinary capacitor increases when dispersing metallic colloid...

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Autores principales: Grebel, H., Yu, Shupei, Zhang, Yuanwei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9765521/
https://www.ncbi.nlm.nih.gov/pubmed/36605810
http://dx.doi.org/10.1039/d2na00794k
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author Grebel, H.
Yu, Shupei
Zhang, Yuanwei
author_facet Grebel, H.
Yu, Shupei
Zhang, Yuanwei
author_sort Grebel, H.
collection PubMed
description Supercapacitors (SCs) are short-term energy storage elements that find many applications, e.g., electronic charging devices and suppressors of power fluctuations in grids that are interfaced with sustainable sources. The capacitance of an ordinary capacitor increases when dispersing metallic colloids in its dielectric. A similar strategy for SCs means deployment of nano-scale metal colloids (in our case, Au nanoparticles, or AuNPs) at the very narrow interface between an electrolyte and a porous electrode (here, active carbon film, AC, on a grafoil current collector). Unlike previous studies, here we placed AuNPs at a small distance from the electrode. This was achieved by coating the AuNPs with a negatively charged ligand that also enables strong adhesion to the electrode. A very large specific capacitance amplification was demonstrated: for example, C–V data at a scan rate of 20 mV s(−1) indicated a specific capacitance amplification of more than 10 when 30 μg of AuNPs was incorporated with 200 mg of active carbon while using a 1 M Na(2)SO(4) electrolyte and a 5% cellulose acetate butyrate binder. Upon replacing the 1 M Na(2)SO(4) electrolyte with 1 M KOH, and keeping the same set of electrodes, the amplification factor decreased but remained large, ∼3, as determined using C–V traces at the same scan rate. This proves that the AuNPs adhered well to the AC electrodes. Simulations indicated the importance of keeping the AuNPs in close proximity to the electrodes, but not in direct contact with them, in order to maintain a substantial amplified polarization effect. Unlike semiconductor embedded electrodes, optical effects were found to be minimal.
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spelling pubmed-97655212023-01-04 Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface Grebel, H. Yu, Shupei Zhang, Yuanwei Nanoscale Adv Chemistry Supercapacitors (SCs) are short-term energy storage elements that find many applications, e.g., electronic charging devices and suppressors of power fluctuations in grids that are interfaced with sustainable sources. The capacitance of an ordinary capacitor increases when dispersing metallic colloids in its dielectric. A similar strategy for SCs means deployment of nano-scale metal colloids (in our case, Au nanoparticles, or AuNPs) at the very narrow interface between an electrolyte and a porous electrode (here, active carbon film, AC, on a grafoil current collector). Unlike previous studies, here we placed AuNPs at a small distance from the electrode. This was achieved by coating the AuNPs with a negatively charged ligand that also enables strong adhesion to the electrode. A very large specific capacitance amplification was demonstrated: for example, C–V data at a scan rate of 20 mV s(−1) indicated a specific capacitance amplification of more than 10 when 30 μg of AuNPs was incorporated with 200 mg of active carbon while using a 1 M Na(2)SO(4) electrolyte and a 5% cellulose acetate butyrate binder. Upon replacing the 1 M Na(2)SO(4) electrolyte with 1 M KOH, and keeping the same set of electrodes, the amplification factor decreased but remained large, ∼3, as determined using C–V traces at the same scan rate. This proves that the AuNPs adhered well to the AC electrodes. Simulations indicated the importance of keeping the AuNPs in close proximity to the electrodes, but not in direct contact with them, in order to maintain a substantial amplified polarization effect. Unlike semiconductor embedded electrodes, optical effects were found to be minimal. RSC 2022-11-14 /pmc/articles/PMC9765521/ /pubmed/36605810 http://dx.doi.org/10.1039/d2na00794k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Grebel, H.
Yu, Shupei
Zhang, Yuanwei
Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface
title Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface
title_full Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface
title_fullStr Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface
title_full_unstemmed Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface
title_short Active carbon based supercapacitors with Au colloids: the case of placing the colloids in close proximity to the electrode interface
title_sort active carbon based supercapacitors with au colloids: the case of placing the colloids in close proximity to the electrode interface
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9765521/
https://www.ncbi.nlm.nih.gov/pubmed/36605810
http://dx.doi.org/10.1039/d2na00794k
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