Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application

Multilayered bacterial cellulose (MBC)/reduced graphene oxide (rGO) composite films were fabricated using dyeing method. First, MBC films were constructed by the static culturing of kombucha SCOBY bacterial cellulose in a rectangular plastic mold for 15 days. The MBC formed on the air-liquid interfa...

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Main Authors: Nopparut Kiangkitiwan, Thanakorn Wasanapiarnpong, Kawee Srikulkit
Format: Article
Language:English
Published: Elsevier 2022-08-01
Series:Heliyon
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844022016152
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author Nopparut Kiangkitiwan
Thanakorn Wasanapiarnpong
Kawee Srikulkit
author_facet Nopparut Kiangkitiwan
Thanakorn Wasanapiarnpong
Kawee Srikulkit
author_sort Nopparut Kiangkitiwan
collection DOAJ
description Multilayered bacterial cellulose (MBC)/reduced graphene oxide (rGO) composite films were fabricated using dyeing method. First, MBC films were constructed by the static culturing of kombucha SCOBY bacterial cellulose in a rectangular plastic mold for 15 days. The MBC formed on the air-liquid interface was collected and employed as the matrix for the preparation of MBC/rGO composite films using dyeing method. As found, the color strength increased with an increase in dyeing cycle due to MBC and GO (rGO precursor) affinity. However, the surface hydrophilicity was found in the opposite direction due to the restacking of hydrophobic rGO nanosheets onto MBC surface after reduction step. SEM images confirmed that MBC/rGO composite films obtained by the dyeing method exhibited the intact multilayer structure. The electrochemical behavior of free-standing and binder-free MBC/rGO electrodes was evaluated. It was found that MBC-1 exhibited the highest specific capacitance value of 192.23 F/g at the current density of 1 A/g (calculated from GCD plots) due to good diffusion of electrolyte arising from surface wettability with current density performance of 66 %. An increase in dyeing cycle (MBC-2, MBC-3, and MBC-4) led to a gradual decrease in the corresponding specific capacitance value due to a gradual increase in the electrolyte resistance derived from an increasing surface hydrophobicity of the composite films. Finally, in all cases, long-term cycle stability of more than 90 % up to 10000 cycles was achievable.
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spelling doaj.art-58110f56d47d4e40860b56f1b368bc612022-12-22T02:36:03ZengElsevierHeliyon2405-84402022-08-0188e10327Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode applicationNopparut Kiangkitiwan0Thanakorn Wasanapiarnpong1Kawee Srikulkit2Department of Materials Science, Faculty of Science, Chulalongkorn University, Bangkok, 10330, ThailandDepartment of Materials Science, Faculty of Science, Chulalongkorn University, Bangkok, 10330, Thailand; Center of Excellence on Petrochemicals and Material Technology, Chulalongkorn University, Bangkok, 10330, ThailandDepartment of Materials Science, Faculty of Science, Chulalongkorn University, Bangkok, 10330, Thailand; Center of Excellence on Petrochemicals and Material Technology, Chulalongkorn University, Bangkok, 10330, Thailand; Corresponding author.Multilayered bacterial cellulose (MBC)/reduced graphene oxide (rGO) composite films were fabricated using dyeing method. First, MBC films were constructed by the static culturing of kombucha SCOBY bacterial cellulose in a rectangular plastic mold for 15 days. The MBC formed on the air-liquid interface was collected and employed as the matrix for the preparation of MBC/rGO composite films using dyeing method. As found, the color strength increased with an increase in dyeing cycle due to MBC and GO (rGO precursor) affinity. However, the surface hydrophilicity was found in the opposite direction due to the restacking of hydrophobic rGO nanosheets onto MBC surface after reduction step. SEM images confirmed that MBC/rGO composite films obtained by the dyeing method exhibited the intact multilayer structure. The electrochemical behavior of free-standing and binder-free MBC/rGO electrodes was evaluated. It was found that MBC-1 exhibited the highest specific capacitance value of 192.23 F/g at the current density of 1 A/g (calculated from GCD plots) due to good diffusion of electrolyte arising from surface wettability with current density performance of 66 %. An increase in dyeing cycle (MBC-2, MBC-3, and MBC-4) led to a gradual decrease in the corresponding specific capacitance value due to a gradual increase in the electrolyte resistance derived from an increasing surface hydrophobicity of the composite films. Finally, in all cases, long-term cycle stability of more than 90 % up to 10000 cycles was achievable.http://www.sciencedirect.com/science/article/pii/S2405844022016152Multilayered bacterial celluloseBacterial cellulose/reduced graphene oxide composite filmFree-standing, and binder-free electrode
spellingShingle Nopparut Kiangkitiwan
Thanakorn Wasanapiarnpong
Kawee Srikulkit
Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application
Heliyon
Multilayered bacterial cellulose
Bacterial cellulose/reduced graphene oxide composite film
Free-standing, and binder-free electrode
title Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application
title_full Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application
title_fullStr Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application
title_full_unstemmed Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application
title_short Multilayered bacterial cellulose/reduced graphene oxide composite films for self-standing and binder-free electrode application
title_sort multilayered bacterial cellulose reduced graphene oxide composite films for self standing and binder free electrode application
topic Multilayered bacterial cellulose
Bacterial cellulose/reduced graphene oxide composite film
Free-standing, and binder-free electrode
url http://www.sciencedirect.com/science/article/pii/S2405844022016152
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AT kaweesrikulkit multilayeredbacterialcellulosereducedgrapheneoxidecompositefilmsforselfstandingandbinderfreeelectrodeapplication