Cargando…

Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte

We present a facile low-cost method to produce nitrogen-doped holey graphene (N-HGE) and its application to supercapacitors. A composite of N-HGE and activated carbon (AC) was used as the electrode active material in organic-electrolyte supercapacitors, and the performances were evaluated. Melamine...

Descripción completa

Detalles Bibliográficos
Autores principales: Huang, Yu-Ren, Pu, Nen-Wen, Wu, Guan-Min, Liu, Yih-Ming, Lin, Ming-Hsien, Kwong, Yi-Le, Li, Siou-Cheng, Chang, Jeng-Kuei, Ger, Ming-Der
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10222225/
https://www.ncbi.nlm.nih.gov/pubmed/37242056
http://dx.doi.org/10.3390/nano13101640
_version_ 1785049646549172224
author Huang, Yu-Ren
Pu, Nen-Wen
Wu, Guan-Min
Liu, Yih-Ming
Lin, Ming-Hsien
Kwong, Yi-Le
Li, Siou-Cheng
Chang, Jeng-Kuei
Ger, Ming-Der
author_facet Huang, Yu-Ren
Pu, Nen-Wen
Wu, Guan-Min
Liu, Yih-Ming
Lin, Ming-Hsien
Kwong, Yi-Le
Li, Siou-Cheng
Chang, Jeng-Kuei
Ger, Ming-Der
author_sort Huang, Yu-Ren
collection PubMed
description We present a facile low-cost method to produce nitrogen-doped holey graphene (N-HGE) and its application to supercapacitors. A composite of N-HGE and activated carbon (AC) was used as the electrode active material in organic-electrolyte supercapacitors, and the performances were evaluated. Melamine was mixed into graphite oxide (GO) as the N source, and an ultra-rapid heating method was used to create numerous holes during the reduction process of GO. X-ray photoelectron spectra confirmed the successful doping with 2.9–4.5 at.% of nitrogen on all samples. Scanning electron micrographs and Raman spectra revealed that a higher heating rate resulted in more holes and defects on the reduced graphene sheets. An extra annealing step at 1000 °C for 1 h was carried out to further eliminate residual oxygen functional groups, which are undesirable in the organic electrolyte system. Compared to the low-heating-rate counterpart (N-GE-15), N-HGE boosted the specific capacity of the supercapacitor by 42 and 22% at current densities of 0.5 and 20 A/g, respectively. The effects of annealing time (0.5, 1, and 2 h) at 1000 °C were also studied. Longer annealing time resulted in higher capacitance values at all current densities due to the minimized oxygen content. Volumetric specific capacitances of 49 and 24 F/cm(3) were achieved at current densities of 0.5 and 20 A/g, respectively. For the high-power-density operation at 31,000 W/kg (or 10,000 W/L), an energy density as high as 11 Wh/kg (or 3.5 Wh/L) was achieved. The results indicated that N-HGE not only improved the conductivity of the composite supercapacitors but also accelerated ion transport by way of shortened diffusion paths through the numerous holes all over the graphene sheets.
format Online
Article
Text
id pubmed-10222225
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-102222252023-05-28 Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte Huang, Yu-Ren Pu, Nen-Wen Wu, Guan-Min Liu, Yih-Ming Lin, Ming-Hsien Kwong, Yi-Le Li, Siou-Cheng Chang, Jeng-Kuei Ger, Ming-Der Nanomaterials (Basel) Article We present a facile low-cost method to produce nitrogen-doped holey graphene (N-HGE) and its application to supercapacitors. A composite of N-HGE and activated carbon (AC) was used as the electrode active material in organic-electrolyte supercapacitors, and the performances were evaluated. Melamine was mixed into graphite oxide (GO) as the N source, and an ultra-rapid heating method was used to create numerous holes during the reduction process of GO. X-ray photoelectron spectra confirmed the successful doping with 2.9–4.5 at.% of nitrogen on all samples. Scanning electron micrographs and Raman spectra revealed that a higher heating rate resulted in more holes and defects on the reduced graphene sheets. An extra annealing step at 1000 °C for 1 h was carried out to further eliminate residual oxygen functional groups, which are undesirable in the organic electrolyte system. Compared to the low-heating-rate counterpart (N-GE-15), N-HGE boosted the specific capacity of the supercapacitor by 42 and 22% at current densities of 0.5 and 20 A/g, respectively. The effects of annealing time (0.5, 1, and 2 h) at 1000 °C were also studied. Longer annealing time resulted in higher capacitance values at all current densities due to the minimized oxygen content. Volumetric specific capacitances of 49 and 24 F/cm(3) were achieved at current densities of 0.5 and 20 A/g, respectively. For the high-power-density operation at 31,000 W/kg (or 10,000 W/L), an energy density as high as 11 Wh/kg (or 3.5 Wh/L) was achieved. The results indicated that N-HGE not only improved the conductivity of the composite supercapacitors but also accelerated ion transport by way of shortened diffusion paths through the numerous holes all over the graphene sheets. MDPI 2023-05-14 /pmc/articles/PMC10222225/ /pubmed/37242056 http://dx.doi.org/10.3390/nano13101640 Text en © 2023 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
Huang, Yu-Ren
Pu, Nen-Wen
Wu, Guan-Min
Liu, Yih-Ming
Lin, Ming-Hsien
Kwong, Yi-Le
Li, Siou-Cheng
Chang, Jeng-Kuei
Ger, Ming-Der
Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte
title Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte
title_full Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte
title_fullStr Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte
title_full_unstemmed Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte
title_short Study on the Application of Nitrogen-Doped Holey Graphene in Supercapacitors with Organic Electrolyte
title_sort study on the application of nitrogen-doped holey graphene in supercapacitors with organic electrolyte
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10222225/
https://www.ncbi.nlm.nih.gov/pubmed/37242056
http://dx.doi.org/10.3390/nano13101640
work_keys_str_mv AT huangyuren studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT punenwen studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT wuguanmin studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT liuyihming studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT linminghsien studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT kwongyile studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT lisioucheng studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT changjengkuei studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte
AT germingder studyontheapplicationofnitrogendopedholeygrapheneinsupercapacitorswithorganicelectrolyte