Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor

High-performance porous 3D graphene-based supercapacitors are one of the most promising and challenging directions for future energy technologies. Microporous graphene has been synthesized by the pyrolysis method. The fabricated lightweight graphene with a few layers (FLG) has an ultra-high surface...

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Published in:RSC Advances
Main Author: Pattanayak B.; Le P.-A.; Panda D.; Simanjuntak F.M.; Wei K.-H.; Winie T.; Tseng T.-Y.
Format: Article
Language:English
Published: Royal Society of Chemistry 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140837784&doi=10.1039%2fd2ra04194d&partnerID=40&md5=c2b9b18b3a42c62b5effbf59e284867d
id 2-s2.0-85140837784
spelling 2-s2.0-85140837784
Pattanayak B.; Le P.-A.; Panda D.; Simanjuntak F.M.; Wei K.-H.; Winie T.; Tseng T.-Y.
Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
2022
RSC Advances
12
42
10.1039/d2ra04194d
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140837784&doi=10.1039%2fd2ra04194d&partnerID=40&md5=c2b9b18b3a42c62b5effbf59e284867d
High-performance porous 3D graphene-based supercapacitors are one of the most promising and challenging directions for future energy technologies. Microporous graphene has been synthesized by the pyrolysis method. The fabricated lightweight graphene with a few layers (FLG) has an ultra-high surface area of 2266 m2 g−1 along with various-sized micropores. The defect-induced morphology and pore size distribution of the fabricated graphene are examined, and the results show that the micropores vary from 0.85 to 1.9 nm and the 1.02 nm pores contribute 30% of the total surface area. The electrochemical behaviour of the electrode fabricated using this graphene has been studied with various concentrations of the KOH electrolyte. The highest specific capacitance of the graphene electrode of 540 F g−1 (close to the theoretical value, ∼550 F g−1) can be achieved by using the 1 M KOH electrolyte. This high specific capacitance contribution involves the counter ion adsorption, co-ion desorption, and ion permutation mechanisms. The formation of a Helmholtz layer, as well as the diffusion of the electrolyte ions, confirms this phenomenon. The symmetrical solid-state supercapacitor fabricated with the graphene electrodes and PVA-KOH gel as the electrolyte exhibits excellent energy and power densities of 18 W h kg−1 and 10.2 kW kg−1, respectively. This supercapacitor also shows a superior 100% coulombic efficiency after 6000 cycles. © 2022 The Royal Society of Chemistry.
Royal Society of Chemistry
20462069
English
Article
All Open Access; Gold Open Access; Green Open Access
author Pattanayak B.; Le P.-A.; Panda D.; Simanjuntak F.M.; Wei K.-H.; Winie T.; Tseng T.-Y.
spellingShingle Pattanayak B.; Le P.-A.; Panda D.; Simanjuntak F.M.; Wei K.-H.; Winie T.; Tseng T.-Y.
Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
author_facet Pattanayak B.; Le P.-A.; Panda D.; Simanjuntak F.M.; Wei K.-H.; Winie T.; Tseng T.-Y.
author_sort Pattanayak B.; Le P.-A.; Panda D.; Simanjuntak F.M.; Wei K.-H.; Winie T.; Tseng T.-Y.
title Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
title_short Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
title_full Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
title_fullStr Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
title_full_unstemmed Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
title_sort Ion accumulation-induced capacitance elevation in a microporous graphene-based supercapacitor
publishDate 2022
container_title RSC Advances
container_volume 12
container_issue 42
doi_str_mv 10.1039/d2ra04194d
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140837784&doi=10.1039%2fd2ra04194d&partnerID=40&md5=c2b9b18b3a42c62b5effbf59e284867d
description High-performance porous 3D graphene-based supercapacitors are one of the most promising and challenging directions for future energy technologies. Microporous graphene has been synthesized by the pyrolysis method. The fabricated lightweight graphene with a few layers (FLG) has an ultra-high surface area of 2266 m2 g−1 along with various-sized micropores. The defect-induced morphology and pore size distribution of the fabricated graphene are examined, and the results show that the micropores vary from 0.85 to 1.9 nm and the 1.02 nm pores contribute 30% of the total surface area. The electrochemical behaviour of the electrode fabricated using this graphene has been studied with various concentrations of the KOH electrolyte. The highest specific capacitance of the graphene electrode of 540 F g−1 (close to the theoretical value, ∼550 F g−1) can be achieved by using the 1 M KOH electrolyte. This high specific capacitance contribution involves the counter ion adsorption, co-ion desorption, and ion permutation mechanisms. The formation of a Helmholtz layer, as well as the diffusion of the electrolyte ions, confirms this phenomenon. The symmetrical solid-state supercapacitor fabricated with the graphene electrodes and PVA-KOH gel as the electrolyte exhibits excellent energy and power densities of 18 W h kg−1 and 10.2 kW kg−1, respectively. This supercapacitor also shows a superior 100% coulombic efficiency after 6000 cycles. © 2022 The Royal Society of Chemistry.
publisher Royal Society of Chemistry
issn 20462069
language English
format Article
accesstype All Open Access; Gold Open Access; Green Open Access
record_format scopus
collection Scopus
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