Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials

A new activation method for carbon-based pore expansion of composite materials was developed using the biocatalytic principle of amylase to hydrolyze cyclodextrin into small molecules of maltose and glucose. The composite carbon nanofiber mats were prepared by electrospinning with polyacrylonitrile...

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Main Authors: Jiang, Xia, Yan, Wei, Shi, Gaofeng, Cai, Wei, Lu, Shiwu, Mishra, Puranjan
Format: Article
Language:English
English
Published: Springer Science and Business Media Deutschland GmbH 2023
Subjects:
Online Access:http://umpir.ump.edu.my/id/eprint/40772/1/Bioenzyme%20activation%20preparation%20of%20Fe3O4_carbon%20nanofibers.pdf
http://umpir.ump.edu.my/id/eprint/40772/2/Bioenzyme%20activation%20preparation%20of%20%20Fe3O_carbon%20nanofibers%20as%20supercapacitor%20electrode%20materials_ABS.pdf
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author Jiang, Xia
Yan, Wei
Shi, Gaofeng
Cai, Wei
Lu, Shiwu
Mishra, Puranjan
author_facet Jiang, Xia
Yan, Wei
Shi, Gaofeng
Cai, Wei
Lu, Shiwu
Mishra, Puranjan
author_sort Jiang, Xia
collection UMP
description A new activation method for carbon-based pore expansion of composite materials was developed using the biocatalytic principle of amylase to hydrolyze cyclodextrin into small molecules of maltose and glucose. The composite carbon nanofiber mats were prepared by electrospinning with polyacrylonitrile (PAN), α-cyclodextrin, iron acetylacetonate as the iron oxide precursor, and hemp straw-based liquefied carbon as the electrospinning precursors. The α-cyclodextrin was hydrolyzed by medium-temperature α-amylase to generate pores, and a composite electrode material of carbon nanofibers with controlled iron oxide/porous structure was prepared through pre-oxidation and carbonization. Based on the morphology and structure of the prepared electrode materials and the electrochemical performance of three electrodes and two electrodes, it can be concluded that it is feasible to prepare electrochemical materials with the pore structure of carbon nanofibers by the enzyme pore enlarging method. Meanwhile, the FePCNF1 reaches 314 F g−1; at the current density 10 A g−1, over 75.6% of initial capacitance is retained as the current density improves from 1 to 10 A g−1 and also exhibits an excellent cycling performance with 62% capacitance retention after 15,000 times charge/discharge cycles.
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spelling UMPir407722024-05-28T07:58:35Z http://umpir.ump.edu.my/id/eprint/40772/ Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials Jiang, Xia Yan, Wei Shi, Gaofeng Cai, Wei Lu, Shiwu Mishra, Puranjan T Technology (General) TA Engineering (General). Civil engineering (General) A new activation method for carbon-based pore expansion of composite materials was developed using the biocatalytic principle of amylase to hydrolyze cyclodextrin into small molecules of maltose and glucose. The composite carbon nanofiber mats were prepared by electrospinning with polyacrylonitrile (PAN), α-cyclodextrin, iron acetylacetonate as the iron oxide precursor, and hemp straw-based liquefied carbon as the electrospinning precursors. The α-cyclodextrin was hydrolyzed by medium-temperature α-amylase to generate pores, and a composite electrode material of carbon nanofibers with controlled iron oxide/porous structure was prepared through pre-oxidation and carbonization. Based on the morphology and structure of the prepared electrode materials and the electrochemical performance of three electrodes and two electrodes, it can be concluded that it is feasible to prepare electrochemical materials with the pore structure of carbon nanofibers by the enzyme pore enlarging method. Meanwhile, the FePCNF1 reaches 314 F g−1; at the current density 10 A g−1, over 75.6% of initial capacitance is retained as the current density improves from 1 to 10 A g−1 and also exhibits an excellent cycling performance with 62% capacitance retention after 15,000 times charge/discharge cycles. Springer Science and Business Media Deutschland GmbH 2023-04 Article PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/40772/1/Bioenzyme%20activation%20preparation%20of%20Fe3O4_carbon%20nanofibers.pdf pdf en http://umpir.ump.edu.my/id/eprint/40772/2/Bioenzyme%20activation%20preparation%20of%20%20Fe3O_carbon%20nanofibers%20as%20supercapacitor%20electrode%20materials_ABS.pdf Jiang, Xia and Yan, Wei and Shi, Gaofeng and Cai, Wei and Lu, Shiwu and Mishra, Puranjan (2023) Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials. Ionics, 29 (4). pp. 1617-1626. ISSN 0947-7047. (Published) https://doi.org/10.1007/s11581-023-04899-y https://doi.org/10.1007/s11581-023-04899-y
spellingShingle T Technology (General)
TA Engineering (General). Civil engineering (General)
Jiang, Xia
Yan, Wei
Shi, Gaofeng
Cai, Wei
Lu, Shiwu
Mishra, Puranjan
Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials
title Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials
title_full Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials
title_fullStr Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials
title_full_unstemmed Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials
title_short Bioenzyme activation preparation of Fe3O/carbon nanofibers as supercapacitor electrode materials
title_sort bioenzyme activation preparation of fe3o carbon nanofibers as supercapacitor electrode materials
topic T Technology (General)
TA Engineering (General). Civil engineering (General)
url http://umpir.ump.edu.my/id/eprint/40772/1/Bioenzyme%20activation%20preparation%20of%20Fe3O4_carbon%20nanofibers.pdf
http://umpir.ump.edu.my/id/eprint/40772/2/Bioenzyme%20activation%20preparation%20of%20%20Fe3O_carbon%20nanofibers%20as%20supercapacitor%20electrode%20materials_ABS.pdf
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AT shigaofeng bioenzymeactivationpreparationoffe3ocarbonnanofibersassupercapacitorelectrodematerials
AT caiwei bioenzymeactivationpreparationoffe3ocarbonnanofibersassupercapacitorelectrodematerials
AT lushiwu bioenzymeactivationpreparationoffe3ocarbonnanofibersassupercapacitorelectrodematerials
AT mishrapuranjan bioenzymeactivationpreparationoffe3ocarbonnanofibersassupercapacitorelectrodematerials