One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes

With the increasing importance of power storage devices, demand for the development of supercapacitors possessing both rapid reversible chargeability and high energy density is accelerating. Here we propose a simple process for the room temperature fabrication of pseudocapacitor electrodes consistin...

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Main Authors: Akiyama, Tatsuya, Nakanishi, Shuhei, Yaakob, Yazid, Todankar, Bhagyashri, Pradeepkumar, Vikaskumar, Asaka, Toru, Ishii, Yosuke, Kawasaki, Shinji, Tanemura, Masaki
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Published: Royal Society of Chemistry 2022
Online Access:http://psasir.upm.edu.my/id/eprint/102375/
https://pubs.rsc.org/en/content/articlelanding/2022/RA/D2RA02780A
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spelling my.upm.eprints.1023752023-05-22T03:41:00Z http://psasir.upm.edu.my/id/eprint/102375/ One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes Akiyama, Tatsuya Nakanishi, Shuhei Yaakob, Yazid Todankar, Bhagyashri Pradeepkumar, Vikaskumar Asaka, Toru Ishii, Yosuke Kawasaki, Shinji Tanemura, Masaki With the increasing importance of power storage devices, demand for the development of supercapacitors possessing both rapid reversible chargeability and high energy density is accelerating. Here we propose a simple process for the room temperature fabrication of pseudocapacitor electrodes consisting of a faradaic redox reaction layer on a metallic electrode with an enhanced surface area. As a model metallic electrode, an Au foil was irradiated with Ar+ ions with a simultaneous supply of C and Ni at room temperature, resulting in fine metallic Ni nanoparticles dispersed in the carbon matrix with local graphitization on the ion-induced roughened Au surface. A carbon layer including fine Ni nanoparticles acted as an excellent faradaic redox reaction layer and the roughened surface contributed to an increase in surface area. The fabricated electrode, which included only 14 μg cm−2 of Ni, showed a stored charge ability three times as large as that of the bulky Ni foil. Thus, it is believed that a carbon layer including Ni nanoparticles fabricated on the charge collective electrode with an ion-irradiation method is promising for the development of supercapacitors from the viewpoints of the reduced use of rare metal and excellent supercapacitor performance. Royal Society of Chemistry 2022 Article PeerReviewed Akiyama, Tatsuya and Nakanishi, Shuhei and Yaakob, Yazid and Todankar, Bhagyashri and Pradeepkumar, Vikaskumar and Asaka, Toru and Ishii, Yosuke and Kawasaki, Shinji and Tanemura, Masaki (2022) One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes. RSC Advances, 12 (33). 21318 - 21331. ISSN 2046-2069 https://pubs.rsc.org/en/content/articlelanding/2022/RA/D2RA02780A 10.1039/D2RA02780A
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
description With the increasing importance of power storage devices, demand for the development of supercapacitors possessing both rapid reversible chargeability and high energy density is accelerating. Here we propose a simple process for the room temperature fabrication of pseudocapacitor electrodes consisting of a faradaic redox reaction layer on a metallic electrode with an enhanced surface area. As a model metallic electrode, an Au foil was irradiated with Ar+ ions with a simultaneous supply of C and Ni at room temperature, resulting in fine metallic Ni nanoparticles dispersed in the carbon matrix with local graphitization on the ion-induced roughened Au surface. A carbon layer including fine Ni nanoparticles acted as an excellent faradaic redox reaction layer and the roughened surface contributed to an increase in surface area. The fabricated electrode, which included only 14 μg cm−2 of Ni, showed a stored charge ability three times as large as that of the bulky Ni foil. Thus, it is believed that a carbon layer including Ni nanoparticles fabricated on the charge collective electrode with an ion-irradiation method is promising for the development of supercapacitors from the viewpoints of the reduced use of rare metal and excellent supercapacitor performance.
format Article
author Akiyama, Tatsuya
Nakanishi, Shuhei
Yaakob, Yazid
Todankar, Bhagyashri
Pradeepkumar, Vikaskumar
Asaka, Toru
Ishii, Yosuke
Kawasaki, Shinji
Tanemura, Masaki
spellingShingle Akiyama, Tatsuya
Nakanishi, Shuhei
Yaakob, Yazid
Todankar, Bhagyashri
Pradeepkumar, Vikaskumar
Asaka, Toru
Ishii, Yosuke
Kawasaki, Shinji
Tanemura, Masaki
One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes
author_facet Akiyama, Tatsuya
Nakanishi, Shuhei
Yaakob, Yazid
Todankar, Bhagyashri
Pradeepkumar, Vikaskumar
Asaka, Toru
Ishii, Yosuke
Kawasaki, Shinji
Tanemura, Masaki
author_sort Akiyama, Tatsuya
title One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes
title_short One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes
title_full One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes
title_fullStr One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes
title_full_unstemmed One-step and room-temperature fabrication of carbon nanocomposites including Ni nanoparticles for supercapacitor electrodes
title_sort one-step and room-temperature fabrication of carbon nanocomposites including ni nanoparticles for supercapacitor electrodes
publisher Royal Society of Chemistry
publishDate 2022
url http://psasir.upm.edu.my/id/eprint/102375/
https://pubs.rsc.org/en/content/articlelanding/2022/RA/D2RA02780A
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score 13.211869