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Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates

Iron oxides with advanced functional properties show great potential for applications in the fields of water splitting, drug delivery, sensors, batteries and supercapacitors. However, it is challenging to develop a simple and efficient strategy for fabricating patterned iron oxide based electrodes f...

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Autores principales: Chen, Ri, Xu, Zehan, Xie, Weijun, Deng, Peiquan, Xu, Yunying, Xu, Lanying, Zhang, Guoying, Yang, Yong, Xie, Guangming, Zhitomirsky, Igor, Shi, Kaiyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10485656/
https://www.ncbi.nlm.nih.gov/pubmed/37692350
http://dx.doi.org/10.1039/d3ra04838a
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author Chen, Ri
Xu, Zehan
Xie, Weijun
Deng, Peiquan
Xu, Yunying
Xu, Lanying
Zhang, Guoying
Yang, Yong
Xie, Guangming
Zhitomirsky, Igor
Shi, Kaiyuan
author_facet Chen, Ri
Xu, Zehan
Xie, Weijun
Deng, Peiquan
Xu, Yunying
Xu, Lanying
Zhang, Guoying
Yang, Yong
Xie, Guangming
Zhitomirsky, Igor
Shi, Kaiyuan
author_sort Chen, Ri
collection PubMed
description Iron oxides with advanced functional properties show great potential for applications in the fields of water splitting, drug delivery, sensors, batteries and supercapacitors. However, it is challenging to develop a simple and efficient strategy for fabricating patterned iron oxide based electrodes for supercapacitor applications. Herein, a facile, simple, scalable, binder-free, surfactant-free and conductive additive-free electric discharge rusting (EDR) technique is proposed to directly synthesize Fe(1−x)O oxide layer on a pure iron substrate. This new EDR strategy is successfully adopted to fabricate Fe–Fe(1−x)O integrative patterned electrodes and coplanar microsupercapacitors (CMSC) in one step. The CMSC devices with different geometries could be directly patterned by EDR, which is automatically controlled by a computer numerical control system. The fabricated Fe–Fe(1−x)O based 3D 2F-CMSC exhibits a maximum areal specific capacitance of 112.4 mF cm(−2). Another important finding is the fabrication of 3D 2F-CMSC devices, which show good capacitive behavior at an ultra high scanning rate of 20 000 mV s(−1). The results prove that EDR is a low-cost and versatile strategy for the scalable fabrication of high-performance patterned supercapacitor integrative electrodes and devices. Furthermore, it is a versatile technique which shows a great potential for development of next generation microelectronic devices, such as microbatteries and microsensors.
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spelling pubmed-104856562023-09-09 Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates Chen, Ri Xu, Zehan Xie, Weijun Deng, Peiquan Xu, Yunying Xu, Lanying Zhang, Guoying Yang, Yong Xie, Guangming Zhitomirsky, Igor Shi, Kaiyuan RSC Adv Chemistry Iron oxides with advanced functional properties show great potential for applications in the fields of water splitting, drug delivery, sensors, batteries and supercapacitors. However, it is challenging to develop a simple and efficient strategy for fabricating patterned iron oxide based electrodes for supercapacitor applications. Herein, a facile, simple, scalable, binder-free, surfactant-free and conductive additive-free electric discharge rusting (EDR) technique is proposed to directly synthesize Fe(1−x)O oxide layer on a pure iron substrate. This new EDR strategy is successfully adopted to fabricate Fe–Fe(1−x)O integrative patterned electrodes and coplanar microsupercapacitors (CMSC) in one step. The CMSC devices with different geometries could be directly patterned by EDR, which is automatically controlled by a computer numerical control system. The fabricated Fe–Fe(1−x)O based 3D 2F-CMSC exhibits a maximum areal specific capacitance of 112.4 mF cm(−2). Another important finding is the fabrication of 3D 2F-CMSC devices, which show good capacitive behavior at an ultra high scanning rate of 20 000 mV s(−1). The results prove that EDR is a low-cost and versatile strategy for the scalable fabrication of high-performance patterned supercapacitor integrative electrodes and devices. Furthermore, it is a versatile technique which shows a great potential for development of next generation microelectronic devices, such as microbatteries and microsensors. The Royal Society of Chemistry 2023-09-08 /pmc/articles/PMC10485656/ /pubmed/37692350 http://dx.doi.org/10.1039/d3ra04838a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Ri
Xu, Zehan
Xie, Weijun
Deng, Peiquan
Xu, Yunying
Xu, Lanying
Zhang, Guoying
Yang, Yong
Xie, Guangming
Zhitomirsky, Igor
Shi, Kaiyuan
Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
title Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
title_full Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
title_fullStr Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
title_full_unstemmed Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
title_short Fabrication of Fe–Fe(1−x)O based 3D coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
title_sort fabrication of fe–fe(1−x)o based 3d coplanar microsupercapacitors by electric discharge rusting of pure iron substrates
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10485656/
https://www.ncbi.nlm.nih.gov/pubmed/37692350
http://dx.doi.org/10.1039/d3ra04838a
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